{"id":21,"date":"2015-01-14T06:11:58","date_gmt":"2015-01-14T06:11:58","guid":{"rendered":"http:\/\/nanomaterials-dev.ucsd.edu\/?page_id=21"},"modified":"2025-03-27T18:48:25","modified_gmt":"2025-03-27T18:48:25","slug":"publications-conferences","status":"publish","type":"page","link":"https:\/\/nanomaterials.ucsd.edu\/?page_id=21","title":{"rendered":"PUBLICATIONS &#038; CONFERENCES"},"content":{"rendered":"<p><strong>Packing fraction related transport in disordered quantum dot arrays<\/strong>, K. Eshraghi, S. Natani, &#038; P.R. Bandaru, <em>Applied Physics Letters<\/em>, <a href=\"https:\/\/pubs.aip.org\/aip\/apl\/article-abstract\/126\/11\/113102\/3340005\/Packing-fraction-related-transport-in-disordered?redirectedFrom=fulltext\">link<\/a>, vol. 126, p. 113102, (2025)<\/p>\n<p><strong>Helical Phononic Modes Induced by a Screw Dislocation<\/strong>, Y. Zhou, R. Davis, P.R. Bandaru, &#038; D. Sievenpiper, <em>Advanced Functional Materials<\/em>, <a href=\"https:\/\/arxiv.org\/abs\/2404.18347\">link<\/a>,  (2025<\/p>\n<p><strong> Long-range order of polygonal grain boundaries<\/strong>, N. Sarkar, P.R. Bandaru, &#038; R.C. Dynes, <em>Physical Review B<\/em>, <a href=\"https:\/\/journals.aps.org\/prb\/abstract\/10.1103\/PhysRevB.111.045103\">link<\/a>, vol. 111, p. 045103, (2025)<\/p>\n<p><strong>Improved corrosion resistance and electrical characteristics of titanium, with atomic layer deposited (ALD) TiOx coating<\/strong>, K. Wang, A. Paxson. T.I. Valdez, A.G. Erlat, P-C. Lee, S. Yun, A.C. Kummel &#038; P.R. Bandaru, <em>Applied Surface Science<\/em>, <a href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/S0169433225004337\">link<\/a>, vol. 692, p. 162719, (2025)<\/p>\n<p><strong>Investigating pressure and solvent effects in Langmuir\u2013Blodgett deposited ferroelectric thin films<\/strong>, P. Khajanji, S. Natani, &#038; P.R. Bandaru, <a href=\"https:\/\/link.springer.com\/article\/10.1557\/s43578-025-01538-2\">link<\/a>, <em>Journal of Materials Research<\/em>, https:\/\/doi.org\/10.1557\/s43578-025-01538-2, (2025) <\/p>\n<p><strong>Statistics Based Modeling and Analysis of Ultra-Low Impedance Carbon Nanotube MOS Capacitors<\/strong>, M. Passlack, et al, <a href=\"https:\/\/ieeexplore.ieee.org\/abstract\/document\/10873578\">link<\/a>, IEEE Symposium on VLSI Technology and Circuits (VLSI Technology and Circuits)<\/em>, (2024)<\/p>\n<p><strong>High performance transistor of aligned carbon nanotubes in a nanosheet structure<\/strong>, N. Safron, et al,<br \/>\n<em>, <a href=\"https:\/\/ieeexplore.ieee.org\/abstract\/document\/10631464\">link<\/a>,  IEEE Symposium on VLSI Technology and Circuits (VLSI Technology and Circuits)<\/em>, (2024)<\/p>\n<p><strong>Modulation of Electrokinetic Potentials Using Graphene-Based Surfaces and Variable Substrate Charge Density<\/strong>, L. Cheng, P. He, Y. Dong, Z. Zhang, &#038; P.R. Bandaru, <a href=\"https:\/\/pubs.acs.org\/doi\/abs\/10.1021\/acs.langmuir.4c00227\">link<\/a>, <em>Langmuir<\/em>, vol. 40, p. 111411, (2024)<\/p>\n<p><a href=\"https:\/\/pubs.acs.org\/doi\/10.1021\/acsaenm.3c00183\"><\/a><strong>Surface Composites Synthesized through the Incorporation of Atomic Layer Deposited AlOx into Nanoporous Fuzzy Tungsten<\/strong>,<a href=\"https:\/\/pubs.acs.org\/doi\/10.1021\/acsami.3c18842\">link<\/a>,  L Cheng, M Patino, MJ Baldwin, PR Bandaru, <em> ACS Applied Materials &#038; Interfaces <\/em> (2024)<\/p>\n<p><strong>Enhanced Corrosion Resistance in Aluminum-Based Electrolyzer Components via Stoichiometry Tuned Atomic Layer-Deposited TiOx Films<\/strong>, K. Wang, A. Paxson. T.I. Valdez, A.G. Erlat, P-C. Lee, S. Yun, P. Khajanji, Z. Zhang, A.C. Kummel &#038; P.R. Bandaru, <em>ACS Applied Materials &#038; Interfaces<\/em>, <a href=\"https:\/\/pubs.acs.org\/doi\/abs\/10.1021\/acsami.4c05450\">link<\/a>, vol. 16, p. 35043, (024)<\/p>\n<p><a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Li-Cheng_2024_Surface-composites.jpeg\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Li-Cheng_2024_Surface-composites.jpeg\" alt=\"\" width=\"475\" height=\"265\" class=\"alignnone size-full wp-image-607\" \/><\/a><\/p>\n<p><strong>Toward the Ultimate Limit of Analyte Detection, in Graphene-Based Field-Effect Transistors<\/strong>, <a href=\"https:\/\/pubs.acs.org\/doi\/10.1021\/acs.nanolett.3c04066\">link<\/a>AW Lee, Y Dong, S Natani, DK Ban, PR Bandaru, <em> Nano Letters <\/em>, 24 (4), 1214, (2024) <a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Nanoletters_2024_Ultimate-limit.gif\"><br \/>\n<a href=\"https:\/\/acs.altmetric.com\/details\/158444453\/news\">In the News <\/a><\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Nanoletters_2024_Ultimate-limit.gif\" alt=\"\" width=\"475\" height=\"265\" class=\"alignnone size-full wp-image-603\" \/><\/a><\/p>\n<p><strong>Modulation of the electrokinetic streaming potential, as a function of the zeta potential and fluid slip<\/strong>, <a href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/S0009261423006917\"> link <\/a>P He, L Cheng, P Bandaru, <em>Chemical Physics Letters<\/em>, vol.834, p. 140986, (2024)<br \/>\n<a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2024\/03\/Putian-He_Chem-Phys-Lett-image.jpeg\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2024\/03\/Putian-He_Chem-Phys-Lett-image.jpeg\" alt=\"\" width=\"375\" height=\"265\" class=\"alignnone size-full wp-image-600\" srcset=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2024\/03\/Putian-He_Chem-Phys-Lett-image.jpeg 750w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2024\/03\/Putian-He_Chem-Phys-Lett-image-300x212.jpeg 300w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2024\/03\/Putian-He_Chem-Phys-Lett-image-624x442.jpeg 624w\" sizes=\"auto, (max-width: 375px) 100vw, 375px\" \/><\/a><\/p>\n<p><strong>Complementary carbon nanotube metal\u2013oxide\u2013semiconductor field-effect transistors with localized solid-state extension doping<\/strong>, <a href=\"https:\/\/www.nature.com\/articles\/s41928-023-01047-2\"> link <\/a>Z Zhang, et al, <em>Nature Electronics<\/em>, vol. 6 (12), p. 999, (2023)<\/p>\n<p><a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Zihen-Zhang_Nature-electronics_2023.png\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Zihen-Zhang_Nature-electronics_2023.png\" alt=\"\" width=\"475\" height=\"265\" class=\"alignnone size-full wp-image-610\" \/><\/a><\/p>\n<p><strong>Pinching and Probing of Polygonal Grain Boundaries<\/strong>,<a href=\"https:\/\/arxiv.org\/pdf\/2311.16376.pdf\"> link <\/a> N Sarkar, PR Bandaru, RC Dynes, arXiv preprint arXiv:2311.16376, (2023)<\/p>\n<p><a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Nirjhar_polygonal-boundaries.png\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Nirjhar_polygonal-boundaries.png\" alt=\"\" width=\"550\" height=\"290\" class=\"alignnone size-full wp-image-612\" \/><\/a><\/p>\n<p><strong>Band-to-Band Tunneling Leakage Current Characterization and Projection in Carbon Nanotube Transistors<\/strong>, <a href=\"https:\/\/pubs.acs.org\/doi\/10.1021\/acsnano.3c04346\"> link <\/a> Q Lin, et al, <em> ACS nano <\/em>, vol. 17 (21), 21083, (2023).<\/p>\n<p><a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Q-Lin_ACS-Nano_2023.jpeg\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Q-Lin_ACS-Nano_2023.jpeg\" alt=\"\" width=\"275\" height=\"100\" class=\"alignnone size-full wp-image-614\" \/><\/a><\/p>\n<p><strong>Ultrathin Gate Dielectric Enabled by Nanofog Aluminum Oxide on Monolayer MoS2 <\/strong>, JS Ko, et al,<br \/>\n<em>ESSDERC 2023-IEEE 53rd European Solid-State Device Research Conference <\/em>, (2023).<\/p>\n<p><a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Ko-and-Zhang-Nanofog-MOS2-ESSDERC-2023.pdf\">Ko and Zhang Nanofog MOS2 ESSDERC 2023<\/a><\/p>\n<p><a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/ESSDERC-conference-paper.png\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/ESSDERC-conference-paper.png\" alt=\"\" width=\"480\" height=\"208\" class=\"alignnone size-full wp-image-628\" \/><\/a><\/p>\n<p><strong>Investigation of the Influence of Nanoscale Porosity in the Interfacial Layers on the Mechanical Properties of Helium Plasma-Exposed Tungsten<\/strong>, <a href=\"https:\/\/pubs.acs.org\/doi\/10.1021\/acsaenm.3c00183\"> link <\/a>L Cheng, M Patino, RJ Chambers, S Cai, M Baldwin, P Bandaru, <em>ACS Applied Engineering Materials <\/em>, vol. 1 (7), 1822, (2023)<\/p>\n<p><a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Li-Cheng_ACS-engineering-2023.jpeg\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Li-Cheng_ACS-engineering-2023.jpeg\" alt=\"\" width=\"500\" height=\"240\" class=\"alignnone size-full wp-image-619\" \/><\/a><\/p>\n<p><strong>Modeling electronic conduction in quantum dot constituted assemblies coupled to metallic electrodes<\/strong>, <a href=\"https:\/\/pubs.aip.org\/aip\/apl\/article\/122\/23\/233104\/2894773\"> link <\/a><br \/>\nK Eshraghi, S Natani, PR Bandaru, <em>Applied Physics Letters<\/em>, vol. 122 (2023).<\/p>\n<p><a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Kassar_APL-QD-modeling.jpeg\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Kassar_APL-QD-modeling.jpeg\" alt=\"\" width=\"420\" height=\"227\" class=\"alignnone size-full wp-image-621\" \/><\/a><\/p>\n<p><strong>Graphene and Two-Dimensional Materials for Biomolecule Sensing<\/strong>,<a href=\"https:\/\/www.annualreviews.org\/doi\/full\/10.1146\/annurev-biophys-111622-091121\"> link <\/a> DK Ban, PR Bandaru,<br \/>\n<em>Annual Review of Biophysics<\/em>, vol. 52, pp. 487-507, (2023)<\/p>\n<p><a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Annual-review-paper_Ban_Bandaru.jpeg\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Annual-review-paper_Ban_Bandaru.jpeg\" alt=\"\" width=\"550\" height=\"281\" class=\"alignnone size-full wp-image-623\" \/><\/a><\/p>\n<p><strong>Characteristic nanoscale deformation on a large-area coherent graphite moir\u00e9 pattern<\/strong>, <a href=\"https:\/\/journals.aps.org\/prb\/abstract\/10.1103\/PhysRevB.107.L161402\"> link <\/a>N Sarkar, PR Bandaru, RC Dynes, <em>Physical Review B <\/em>, vol. 107 (16), L161402 (2023).<br \/>\n<a href=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Nirjhar-Phys-Rev-B.jpg\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Nirjhar-Phys-Rev-B.jpg\" alt=\"\" width=\"550\" height=\"273\" class=\"alignnone size-full wp-image-625\" \/><\/a><\/p>\n<p><strong>On-chip unidirectional waveguiding for surface acoustic waves along a defect line in a triangular lattice<\/strong>, Y. Zhou, et al, <em>Physical Review: Applied <\/em> (2023) <a href=\"https:\/\/journals.aps.org\/prapplied\/accepted\/dc07aAe5K24Wa21190f904447f25a7bda0d0dd924\">link<\/a><\/p>\n<p><strong>Femtomolar Level-Specific Detection of Lead Ions in Aqueous Environments, Using Aptamer-Derivatized Graphene Field-Effect Transistors<\/strong>. Y. Dong, et al, <em>ACS Applied Nanomaterials<\/em> (2023) <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2023\/02\/acsanm.2c05542.pdf\">link<\/a><\/p>\n<p><strong>Probing interlayer van der Waals strengths of two-dimensional surfaces and defects, through STM tip-induced elastic deformations<\/strong>. N. Sarkar, et al <em>Nanotechnology<\/em>, vol. 34, 15LT01, (2023)<a href=\"https:\/\/iopscience.iop.org\/article\/10.1088\/1361-6528\/acb442\">link<\/a><\/p>\n<p><strong>The Modulation of Electrokinetic Streaming Potentials of Silicon-Based Surfaces through Plasma-Based Surface Processing<\/strong>, Cheng, et al, <em>Langmuir<\/em>, vol. 38, p. 11837, (2022) <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2023\/01\/Langmuir_Li-Cheng_Plasma-Processing-paper_Langmuir_2022.pdf\">link<\/a><\/p>\n<p><strong>Topologically protected edge states in triangular lattices<\/strong>, Davis, et al, <em>Physical Review B<\/em>, vol. 108, p. 165403, (2022) <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2023\/01\/Toological-ly-protected-edge-states_Davis-PhysRevB.106.165403.pdf\">link<\/a><\/p>\n<p><strong>Rapid self-test of unprocessed viruses of SARS-CoV-2 and its variants in saliva by portable wireless graphene biosensor<\/strong>, Ban, et al, <em>Proceedings of the National Academy of Sciences: PNAS<\/em>, vol. 119, e2206521119, (2022)<a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2023\/01\/Ban_Covid_pnas.2206521119.pdf\">link<\/a><\/p>\n<p><strong>Enhanced graphene surface plasmonics through incorporation into metallic nanostructures<\/strong>, Y. Dong &#038; P.R. Bandaru, <em>Optics Express<\/em>, vol. 30, p. 30696, (2022) <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2023\/01\/Yongliang-_optics-express_Graphene-plasmonics.pdf\">link<\/a><\/p>\n<p><strong>Remote Oxygen Scavenging of the Interfacial Oxide Layer in Ferroelectric Hafnium\u2013Zirconium Oxide-Based Metal\u2013Oxide\u2013Semiconductor Structures<\/strong>, Tasneem, et al, <em>ACS Applied Materials and Interfaces<\/em>, vol. 14, p. 43897, (2022) <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2023\/01\/ACS-AMI_ferroelectrics.pdf\">link<\/a><\/p>\n<p><strong>Component wise contribution to total thermal resistance in 2D material based device stacks<\/strong>, R. Galib &#038; P.R. Bandaru, <em>International Journal of Thermal Sciences<\/em>, vol. 179, p. 107623, (2022) <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2023\/01\/Roisul-_IJTS_2022.pdf\">link<\/a><\/p>\n<p><strong>Sub-Nanometer Interfacial Oxides on Highly Oriented Pyrolytic Graphite and Carbon Nanotubes Enabled by Lateral Oxide Growth<\/strong>. Z. Zhang, et al, <em>ACS Applied Materials &#038; Interfaces <\/em>, (2022) <a href=\"https:\/\/pubs.acs.org\/doi\/10.1021\/acsami.1c21743\">link <\/a><\/p>\n<p><strong>Bandgap Extraction at 10 K to Enable Leakage Control in Carbon Nanotube MOSFETs<\/strong><br \/>\nQ. Lin, et al, <em>IEEE Electron Device Letters<\/em>, (2022) doi: 10.1109\/LED.2022.3141692<\/p>\n<p><strong>A Poisson\u2010Nernst\u2010Planck Model of Ion Transport and Interface Segregation in Metal\u2010Insulator\u2010Semiconductor Structures and Solar Cells<\/strong>, E. Martinez-Loran, et al., <em>Physica Status Solidi<\/em>, https:\/\/doi.org\/10.1002\/pssb.202100514, (2022)<\/p>\n<p><strong>Photonic Topological Insulators: A Beginner&#8217;s Introduction<\/strong> [Electromagnetic Perspectives], D. Bisharat, R. Davis, Y. Zhou, P.R. Bandaru &#038; D. Sievenpiper, <em> IEEE Antennas and Propagation<\/em>, vol. 63, p. 112 (2021), <a href=\"https:\/\/arxiv.org\/abs\/2104.00122\"><\/a> <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2021\/07\/PTIs-a-beginners-introduction.pdf\">pdf<\/a><\/p>\n<p><strong>Short-Channel Double-Gate FETs with Atomically Precise Graphene Nanoribbons<\/strong>, Z. Mutlu, et al, 2021 IEEE International Electron Devices Meeting (IEDM), (2021) <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2023\/01\/Mutlu-Nanofog-Nanoribbons-IEDM-2021.pdf\">link<\/a><\/p>\n<p><strong>Advances in Metasurfaces: Topology, Chirality, Patterning, and Time Modulation.<\/strong>, S. Singh, R.J. Davis, D. Bisharat, J. Lee, S.M. Kandil, E. Wen, X. Yang, Y. Zhou, P.R. Bandaru, D.F. Sievenpiper <em> IEEE Antennas and Propagation<\/em>, (2021) doi: 10.1109\/MAP.2021.3127541<\/p>\n<p><strong>Finite Element Simulation of Potential-Induced Degradation Kinetics in p-Type Silicon Solar Modules<\/strong>, E. Martinez-Loran, G Von Gastrow, J. Clenney, R. Meier, P.R. Bandaru, M.I.Bertoni, &#038; D.P.Fenning, <em>IEEE Journal of Photovoltaics<\/em>, vol. 12, p. 45, (2021)<\/p>\n<p><strong>Enhancement of photoelectron emission efficiency from quantum dot solids, through electrical field biasing of interfaces<\/strong>, K. Eshraghi &#038; P.R. Bandaru, <em>Applied Physics Letters<\/em>, https:\/\/doi.org\/10.1063\/5.0052593, (2021) <\/p>\n<p><strong>Influence of Surface Texture on the Variation of Electrokinetic Streaming Potentials<\/strong>, L. Cheng, B. Fan, Z. Zhang, &#038; P.R. Bandaru, <em>Langmuir<\/em>, vol. 21, p. 6736, (2021) <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2021\/07\/acs.langmuir.1c00738_2021.pdf\">pdf<\/a><\/p>\n<p><strong>Photonic Topological Insulators<\/strong>, Bisharat, D.J., Davis R., Zhou, Y., Bandaru, P.R. and Sievenpiper, D.F. <em> IEEE Antennas &#038; Propagation Magazine<\/em>, vo. 63 (3), p. 112, (2021)<a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2021\/07\/PTIs-a-beginners-introduction.pdf\">pdf<\/a><a href=\"http:\/\/arXiv preprint arXiv:2104.00122\"><\/a><\/p>\n<p><strong>Sub-0.5 nm interfacial dielectric enables superior electrostatics: 65 mV\/dec top-gated carbon nanotube FETs at 15 nm gate length<\/strong>, G. Pitner, et al, International Electron Devices Meeting (IEDM) (2021) <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2021\/07\/IEDM_2020_sub-0.5-nm-EOT.pdf\"><a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2021\/07\/IEDM_2020_sub-0.5-nm-EOT.pdf\">pdf<\/a><\/a><\/p>\n<p><strong>Confining and channeling sound through coupled resonators<\/strong>, Y. Zhou, D. Sievenpiper &#038; P.R. Bandaru, <em>Journal of Applied Physics<\/em>, vol. 129, p. 095103 (2021) <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2021\/07\/JAP-_2021_.pdf\">pdf<\/a><\/p>\n<p><strong>Recent Advances in Thermal metamaterials and their future applications for electronic packaging<\/strong>, J. C. Kim, et al, <em>Journal of Electronic Packaging<\/em>, vol. 143(1), 010801, (2021)<\/p>\n<p><strong>Possibility of obtaining two orders of magnitude larger electrokinetic streaming potentials, through liquid infiltrated surfaces<\/strong>, B. Fan &#038; P.R. Bandaru, <em>Langmuir<\/em>, vol. 36(34), 10238, (2020). <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Orders-of-magnitude-larger-EK-potentials-_langmuir.2020.pdf\">pdf<\/a><\/p>\n<p><strong>Direct DNA methylation profiling with electric biosensor<\/strong>, D.K. Ban, et al, <em>ACS Nano<\/em>, vol. 14(6), p. 6743, (2020).<\/p>\n<p><strong>Enhanced Dynamic Charging Characteristics through Nanoscale Fuzzy Tungsten Surfaces<\/strong>, P. Chen, J. Sigurdson, M. Baldwin, &#038; P.R. Bandaru,<em> Journal of the Electrochemical Society<\/em>, vol. 167 (11), p. 116515 (2020) link<\/p>\n<p><strong>Quantification of Sodium\u2010Ion Migration in Silicon Nitride by Flatband\u2010Potential Monitoring at Device\u2010Operating Temperatures<\/strong>, <em>Physica Status Solidi (A)<\/em>, vol. 217 (16), (2020). link<\/p>\n<p><strong> Iron redox pathway revealed in ferritin via electron transfer analysis<\/strong>,<br \/>\nP. Chen, E. De Meulenaere, D. D. Deheyn &#038; P. R. Bandaru, <em>Scientific Reports<\/em>, vol. 10, Article number: 4033 (2020) <a href=\"https:\/\/www.nature.com\/articles\/s41598-020-60640-z\">link<\/a><\/p>\n<p><strong>Interaction and hybridization of orthogonal Fabry-P\u00e9rot like surface plasmon modes in metal-dielectric grating structures<\/strong>, Y Dong, and P.R. Bandaru, <em>Optics Express<\/em>, 28 (3), 3541-3551, (2020) <a href=\"https:\/\/www.osapublishing.org\/oe\/abstract.cfm?uri=oe-28-3-3541\">pdf<\/a><\/p>\n<p><strong>Acoustic wave confinement by chiral waveguide made of Helmholtz resonators<\/strong>, Y.Zhou, P.R. Bandaru, and D.F. Sievenpiper, <em>The Journal of the Acoustical Society of America<\/em>, vol. 146 (4), p.2786, (2019)<\/p>\n<p><strong>Tensorial Modulation of Electrokinetic Streaming Potentials on Air and Liquid Filled Surfaces<\/strong>, B. Fan and P.R. Bandaru, <em>Langmuir<\/em>, vol. 35 (46), p. 14812-14817, (2019) <a href=\"https:\/\/pubs.acs.org\/doi\/abs\/10.1021\/acs.langmuir.9b02841\">link<\/a><\/p>\n<p><strong>Modulation of the Streaming Potential and Slip Characteristics in Electrolyte Flow over Liquid-Filled Surfaces<\/strong>, B. Fan and P.R. Bandaru, <em>Langmuir<\/em>, vol.35 (18), p.6203-6210 (2019) <a href=\"https:\/\/pubs.acs.org\/doi\/full\/10.1021\/acs.langmuir.9b00704\"><a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Modulation-of-streaming-potentials_Langmuir.pdf\">pdf<\/a><\/a><\/p>\n<p><strong>Enhanced voltage generation through electrolyte flow on liquid-filled surfaces<\/strong>,<a href=\"https:\/\/www.nature.com\/articles\/s41467-018-06297-9\">link<\/a><br \/>\nB. Fan, A. Bhattacharya, P.R. Bandaru, <em>Nature Communications<\/em>, vol. 9 (1), 4050, (2018)<\/p>\n<p>Press Coverage:<br \/>\n<a href=\"https:\/\/www.popularmechanics.com\/science\/environment\/a23596033\/ocean-ions-electricity\/\">Popular Mechanics<\/a>,  <a href=\"https:\/\/www.sciencenewsforstudents.org\/article\/super-water-repellent-surfaces-can-generate-energy\">Science News for Students<\/a>, <a href=\"https:\/\/www.materialstoday.com\/surface-science\/news\/superhydrophobic-surface-shocking-result\/\">Materials Today<\/a>, <a href=\"https:\/\/www.rdmag.com\/news\/2018\/10\/flowing-salt-water-over-super-hydrophobic-surface-can-generate-electricity\">R &#038; D <\/a>, <a href=\"http:\/\/www.hngn.com\/articles\/226831\/20181003\/flowing-salt-water-over-this-super-hydrophobic-surface-can-generate-electricity.htm\">Headline &#038; Global News<\/a>,<a href=\"https:\/\/www.sciencedaily.com\/releases\/2018\/10\/181003134449.htm\">ScienceDaily<\/a>, <a href=\"https:\/\/www.nanowerk.com\/nanotechnology-news2\/newsid=51197.php\">Nanowerk<\/a>, <a href=\"https:\/\/phys.org\/news\/2018-10-salt-super-hydrophobic-surface-electricity.html\">Phys.org, <\/a>, <a href=\"https:\/\/www.innovationtoronto.com\/2018\/10\/generating-electricity-by-flowing-salt-water-over-a-special-super-hydrophobic-surface\/\">Innovation Toronto<\/a>,<a href=\"https:\/\/www.solarify.eu\/2018\/10\/06\/604-neue-art-der-stromerzeugung\/\">Solarify<\/a>, <a href=\"https:\/\/watersecuritynewswire.com\/2018\/10\/03\/flowing-salt-water-over-this-super-hydrophobic-surface-can-generate-electricity\/\">Water Security<\/a>,<a href=\"https:\/\/www.eurekalert.org\/pub_releases\/2018-10\/uoc--fsw100318.php\">EurekAlert<\/a>,<a href=\"https:\/\/www.americanlaboratory.com\/354241-Ultra-Hydrophobic-Surface-Produces-at-Least-50-Millivolts-of-Electricity\/\">American Laboratory<\/a>,<a href=\"https:\/\/vaeng.com\/news\/super-hydrophobic-surface-developed\">The Virginia Engineer<\/a>,<a href=\"http:\/\/www.newelectronics.co.uk\/electronics-news\/flowing-salt-water-over-this-super-hydrophobic-surface-can-generate-electricity\/189934\/\">New Electronics<\/a>, etc. <\/p>\n<p><strong>Emergence of Novel Multipactor Modes Under Standing Wave Conditions in a Coaxial Line With an RF Window<\/strong>, T.W. Hall, P.R. Bandaru, and D Rees, <em>IEEE Transactions on Plasma Science<\/em>, vol. 47 (3), p. 1526-1533, (2019) <a href=\"https:\/\/ieeexplore.ieee.org\/document\/8648478\">link<\/a><\/p>\n<p><strong>Electron tunneling in nanoscale electrodes for battery applications<\/strong>,<a href=\"https:\/\/www.sciencedirect.com\/science\/article\/abs\/pii\/S000926141830071X\">link<\/a>, H.Yamada, R. Narayanan, P.R. Bandaru, <em>Chemical Physics Letters<\/em>, vol. 695, 24, (2018)<\/p>\n<p><strong>Enhanced Environmental Stability Coupled with a 12.5% Power Conversion Efficiency in an Aluminum Oxide-Encapsulated n-Graphene\/p-Silicon Solar Cell<\/strong>,<a href=\"https:\/\/pubs.acs.org\/doi\/abs\/10.1021\/acsami.8b16322?mi=aayia761&#038;af=R&#038;AllField=nano&#038;target=default&#038;targetTab=std&#038;\">link<\/a> S. Yavuz, E.M. Loran, N.Sarkar, D.P. Fenning, and P.R. Bandaru, <em>ACS applied materials &#038; interfaces<\/em>, vol. 10 (43), 37181, (2018)<\/p>\n<p><strong>Quantum-spin-Hall topological insulator in a spring-mass system<\/strong>, Y. Zhou, P.R. Bandaru, and D.F. Sievenpiper, <em>New Journal of Physics<\/em>, vol. 20 (12), 123011, (2018)<a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/Zhou_2018_New_J._Phys._20_123011.pdf\">pdf<\/a><\/p>\n<p><strong>Enhanced Solar Thermal Evaporation of Ethanol\u2013Water Mixtures, through the Use of Porous Media<\/strong>, <a href=\"https:\/\/pubs.acs.org\/doi\/10.1021\/acs.langmuir.8b01731\">link <\/a>F.M. Canbazoglu, B.Fan, K.Vemuri, P.R. Bandaru, <em>Langmuir<\/em>,vol. 34 (36), 10523, (2018)<\/p>\n<p><strong>Light induced reversible and irreversible mechanical responses in nanotube-polymer composites<\/strong>, <a href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/S1359836817318528\">link<\/a>, X. Liang, Z Zhang, A. Satisha, S. Cai, and P.R. Bandaru,<em> Composites B<\/em>, vol. 134, p.39, (2018)<\/p>\n<p><strong>Anisotropy in the hydrophobic and oleophilic characteristics of patterned surfaces<\/strong>,<a href=\"https:\/\/aip.scitation.org\/doi\/10.1063\/1.5000540\">link<\/a><br \/>\nB.Fan, P.R. Bandaru, <em>Applied Physics Letters<\/em>, vol. 111 (26), 261603, (2017)<\/p>\n<p><strong>Hierarchically structured, oxygen deficient, tungsten oxide morphologies for enhanced photoelectrochemical charge transfer and stability<\/strong>,<a href=\"https:\/\/pubs.rsc.org\/en\/content\/articlelanding\/2017\/ta\/c7ta04118g#!divAbstract\">link<\/a>, P. Chen, M. Baldwin, and P.R. Bandaru,<em> Journal of\u00a0Materials\u00a0Chemistry\u00a0A<\/em>, vol. 5, 14898-14905, (2017)<\/p>\n<p><strong>Dimensionality-Dependent Electrochemical Kinetics at the Single-Layer Graphene\u2013Electrolyte Interface<\/strong>, <a href=\"https:\/\/pubs.acs.org\/doi\/abs\/10.1021\/acs.jpclett.7b01688\">link<\/a>, R. Narayanan, H. Yamada, B.C. Marin, A. Zaretski, and P.R. Bandaru, <em>Journal of Physical Chemistry Letters<\/em>, vol. 8, 4004, (2017)<\/p>\n<p><strong>Electrochemical kinetics and dimensional considerations at the nanoscale: the influence of the density of states<\/strong>,H. Yamada, R. Narayanan, and P.R. Bandaru,  MRS Communications, (2017)<\/p>\n<p><strong>The modification of the pore characteristics of activated carbon, for use in electrical double layer capacitors, through plasma processing<\/strong>,<a href=\"http:\/\/ecst.ecsdl.org\/content\/77\/11\/533.abstract\">link<\/a> M.L. Muriel, R. Narayanan, and P.R. Bandaru<br \/>\n<em>ECS Transactions<\/em>, vol. 77 (11), p.533, (2017)<\/p>\n<p><strong>Enhanced photocathode performance through optimization of film thickness and substrate<\/strong>, A. Alexander, N.A. Moody, and P.R. Bandaru, <em> Journal of Vacuum Science &#038; Technology B<\/em>, 35 (2) 022202, 2017 <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/JVST-B-_anna.pdf\">pdf<\/a> <\/p>\n<p><strong>Application of Impedance Matching for Enhanced Transmitted Power in a Thermophotovoltaic System,<\/strong> C. Lin, B. Wang, K.H. Teo, and P.R. Bandaru, <em> Physical Review (Applied)<\/em> 7, 034003, 2017 <a href=\"http:\/\/journals.aps.org\/prapplied\/abstract\/10.1103\/PhysRevApplied.7.034003\"> link <\/a> <a href=\"http:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/01\/TPV-impedance-matching_MERL_Bandaru.pdf\">pdf<\/a><\/p>\n<p><strong>The role of defects and dimensionality in influencing the charge, capacitance, and energy storage of graphene and 2D materials<\/strong>, <a href=\"https:\/\/www.degruyter.com\/view\/j\/ntrev.ahead-of-print\/ntrev-2016-0099\/ntrev-2016-0099.xml?format=INT\">link<\/a> P.R. Bandaru, H. Yamada, R. Narayana, and M.A. Hoefer, DOI: https:\/\/doi.org\/10.1515\/ntrev-2016-0099<\/p>\n<p><strong>Enhanced solar evaporation of water from porous media, through capillary mediated forces and surface treatment<\/strong>,  <a href=\"http:\/\/arxiv.org\/abs\/1607.03067\">link<\/a>, F. M. Canbazoglu, B. Fan, A. Kargar, K. Vemuri, and P.R. Bandaru, AIP Advances 6, 085218 (2016); doi: 10.1063\/1.496194<\/p>\n<p><strong>Photo-response of a single Y-junction carbon nanotube<\/strong> <a href=\"http:\/\/pubs.acs.org\/doi\/pdf\/10.1021\/acsami.6b04231\">link<\/a> S.Samanta, D.Saini, A.Singha, K.Das, P. R. Bandaru, A. M. Rao, and A.K, Raychaudhuri <em><br \/>\nACS Appl. Mater. Interfaces<\/em>, DOI: 10.1021\/acsami.6b04231, July, 2016<\/p>\n<p><strong>Electrochemical kinetics and dimensional considerations at the nanoscale<\/strong>, H. Yamada, P.R. Bandaru<a href=\"http:\/\/lanl.arxiv.org\/abs\/1604.06147\"> link <\/a><br \/>\nSubjects: Mesoscale and Nanoscale Physics (cond-mat.mes-hall); Materials Science (cond-mat.mtrl-sci); Chemical Physics (physics.chem-ph) (2016)<\/p>\n<p><strong>Graphene oxide as a p-dopant and an anti-reflection coating layer, in graphene\/silicon solar cells<\/strong>, <a href=\"http:\/\/pubs.rsc.org\/en\/content\/articlelanding\/2016\/nr\/c5nr09143h#!divAbstract\">link<\/a><br \/>\nS. Yavuz, C. Kuru, D. Choi, A. Kargar, S. Jin, and P.R. Bandaru. <em>Nanoscale<\/em>, vol. 8(12), 6473, (2016) doi: 10.1039\/c5nr09143h. <\/p>\n<p><strong>An approach towards a perfect thermal diffuser<\/strong>, K. P. Vemuri &#038; P. R. Bandaru, <a href=\"http:\/\/lanl.arxiv.org\/abs\/1512.04140\"> link <\/a>, Materials Science (cond-mat.mtrl-sci) (2016)<\/p>\n<p><strong>Electrically Conductive Polymer Nanocomposites with High Thermal Conductivity<\/strong>, P. R. Bandaru , B.-W. Kim, S. Pfeifer, R. S. Kapadia, S.-H. Park, <a href=\"http:\/\/link.springer.com\/chapter\/10.1007\/978-3-319-28238-1_10\"> link <\/a>, <em> Polymer Nanocomposites: Electrical and Thermal Properties<\/em> (2016)<br \/>\nISBN: 978-3-319-28236-7<\/p>\n<p><strong>High-performance flexible hydrogen sensor made of WS<sub>2<\/sub> nanosheet\u2013Pd nanoparticle composite film<\/strong>, <a href=\"http:\/\/iopscience.iop.org\/article\/10.1088\/0957-4484\/27\/19\/195501\/meta\">link<\/a>, C. Kuru, D. Choi, A. Kargar, C-H. Liu, S. Yavuz, C. Choi, S. Jin, and P. R. Bandaru, <em>Nanotechnology<\/em>, vol. 27(19), 195501, (2016)<\/p>\n<p><strong>Electrochemical charge storage in hierarchical carbon manifolds<\/strong>,<a href=\"http:\/\/www.sciencedirect.com\/science\/article\/pii\/S0008622315304863\">link <\/a> R. Narayanan, H. Vijwani, S. M. Mukhopadhyay, and P. R. Bandaru, <em> Carbon<\/em>, vol. 99, p. 267, (2016).<br \/>\n<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2016\/02\/Wright-state-collab.jpg\"><img loading=\"lazy\" decoding=\"async\" src=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2016\/02\/Wright-state-collab-300x61.jpg\" alt=\"Wright state collab\" width=\"300\" height=\"61\" class=\"alignnone size-medium wp-image-292\" srcset=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2016\/02\/Wright-state-collab-300x61.jpg 300w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2016\/02\/Wright-state-collab.jpg 468w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/><\/a><\/p>\n<p><strong> Enhanced quantum efficiency of photoelectron emission, through surface textured metal electrodes <\/strong>, <a href=\"http:\/\/scitation.aip.org\/content\/avs\/journal\/jvsta\/34\/2\/10.1116\/1.4936082\" title=\"link\">link <\/a>, A. Alexander, N.A. Moody, P.R. Bandaru, <em> Journal of Vacuum Science &#038; Technology A <\/em>, vol. 35, 021401, (2016)<\/p>\n<p><strong>Bioinspired superhydrophobic surfaces, fabricated through simple and scalable roll-to-roll processing<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2016\/02\/Bioinspired-SH-surfaces_Park_Moreira_Bandaru.pdf\"> pdf <\/a>, S-H. Park, S. Lee, D. Moreira, P. R. Bandaru, I. Han &#038; D-J. Yun, <em>Scientific Reports (Nature) <\/em>,<strong> 5<\/strong>, Article number: 15430 (2015)<\/p>\n<p><strong>Increasing Energy Storage in Activated Carbon based Electrical Double Layer Capacitors through Plasma Processing<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2016\/02\/Proceedings-Activated-Carbon-Plasma-processing-_FINAL.pdf\"> pdf <\/a>, M. Muriel, R. Narayanan, and P.R. Bandaru, <em> Materials Research Society Symposium Proceedings<\/em>, vol. 1773, DOI: 10.1557\/opl.2015.573, (2015)<\/p>\n<p><strong> Solution-Processed CoFe<sub>2<\/sub>O<sub>4<\/sub> Nanoparticles on 3D Carbon Fiber Papers for Durable Oxygen Evolution Reaction <\/strong>, <a href=\"http:\/\/pubs.acs.org\/doi\/abs\/10.1021\/acsami.5b04270\"> link<\/a>A. Kargar, S. Yavuz, T. Kim, C. Liu, C. Kuru, C.S. Rustomji, S. Jin and P.R. Bandaru <em> et al<\/em>,  <em> ACS Applied Materials &#038; Interfaces<\/em>, vol. 7 (32), pp 17851\u201317856, (2015) <\/p>\n<p><strong> Reduction of Simulation Times for High-Q Structures Using the Resonance Equation <\/strong> <a href=\"http:\/\/www.jpier.org\/PIERM\/pier.php?paper=15090802\"> link <\/a><br \/>\nT.W. Hall, P.R. Bandaru, and D. Rees, <em> Progress In Electromagnetics Research M <\/em>, Vol. 44, 149\u2013160, (2015)<\/p>\n<p><strong>Enhanced Power Conversion Efficiency of Graphene\/Silicon Heterojunction Solar Cells Through NiO Induced Doping<\/strong>, C. Kuru, S. Yavuz, A. Kargar, D. Choi, C. Choi, C.S. Rustomji, S. Jin, and P.R. Bandaru,<em> Journal of Nanoscience and Nanotechnology<\/em>, Vol. 16 (1), pp. 1190-1193, (2016) DOI: http:\/\/dx.doi.org\/10.1166\/jnn.2016.12079<\/p>\n<p><strong>Modulation of the Electrostatic and Quantum Capacitances of Few Layered Graphenes through Plasma Processing <\/strong> <a href=\"http:\/\/pubs.acs.org\/doi\/abs\/10.1021\/acs.nanolett.5b00055\"> link <\/a>R. Narayanan, H. Yamada, M. Karakaya, R. Podila, A. M. Rao, and P. R. Bandaru, <em> Nanoletters<\/em>, DOI: 10.1021\/acs.nanolett.5b00055, (2015)<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/Nanoletters_April-2015_cover.jpg\"><img loading=\"lazy\" decoding=\"async\" src=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/Nanoletters_April-2015_cover-300x189.jpg\" alt=\"Nanoletters_April 2015_cover\" width=\"300\" height=\"189\" class=\"alignnone size-medium wp-image-247\" srcset=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Nanoletters_April-2015_cover-300x189.jpg 300w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Nanoletters_April-2015_cover.jpg 418w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/><\/a><\/p>\n<p><strong>Thermal transport in laminar flow over superhydrophobic surfaces,utilizing an effective medium approach,<\/strong> <a href=\"http:\/\/scitation.aip.org\/content\/aip\/journal\/pof2\/27\/5\/10.1063\/1.4919699\">link <\/a>David Moreira and P.R. Bandaru, <em>Physics of Fluid<\/em>s, <strong>27<\/strong>, 052001 (2015)<br \/>\n<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/05\/Physics-of-fluids_David_2015.jpg\"><img loading=\"lazy\" decoding=\"async\" src=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/05\/Physics-of-fluids_David_2015-300x212.jpg\" alt=\"Physics of fluids_David_2015\" width=\"300\" height=\"212\" class=\"alignnone size-medium wp-image-279\" srcset=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/05\/Physics-of-fluids_David_2015-300x212.jpg 300w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/05\/Physics-of-fluids_David_2015.jpg 584w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/><\/a><\/p>\n<p><strong>Charge Transfer and Storage in Nanostructures<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2016\/02\/MSER_Charge-storage-in-nanostructures.pdf\"> pdf <\/a>, P.R. Bandaru, R. Narayanan, H Yamada, and M. Hoefer, <em>Materials Science &#038; Engineering (R)<\/em>, vol. 96, p. 1, (2015)<\/p>\n<p><strong>Estimating interfacial thermal conductivity in metamaterials through heat flux mapping<\/strong>,<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/APL_Fatih-Krishna_April-2015.pdf\">pdf<\/a><br \/>\nF. M. Canbazoglu, K. P. Vemuri, and P. R. Bandaru, <em>Appl. Phys. Lett<\/em>. 106, 143904 (2015).<br \/>\n<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/Fatih_webpage_coverpic.png\"><img loading=\"lazy\" decoding=\"async\" src=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/Fatih_webpage_coverpic-300x229.png\" alt=\"Fatih_webpage_coverpic\" width=\"300\" height=\"229\" class=\"alignnone size-medium wp-image-251\" srcset=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Fatih_webpage_coverpic-300x229.png 300w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Fatih_webpage_coverpic-1024x780.png 1024w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Fatih_webpage_coverpic-624x475.png 624w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Fatih_webpage_coverpic.png 1322w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/><\/a><\/p>\n<p><strong>Electrical Contacts to Nanomaterials<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2016\/02\/JNN_Contacts-to-nanomaterials.pdf\"> pdf <\/a> P.R. Bandaru, H. Faraby, and M. DiBattista,  <em>Journal of NanoScience and Nanotechnology<\/em>, vol. 15. p, 9315 (2015)<\/p>\n<p><strong>High Rate Capacity through Redox Electrolytes Confined in Macroporous Electrodes<\/strong>,<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Rajaram_JECS_high-rate-capacity_2015.pdf\">pdf<\/a><br \/>\nR. Narayanan and P. R. Bandaru, <em> Journal of The Electrochemical Society<\/em>, vol. 162(1), p. A86-A91, (2015)<br \/>\n<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/Rajaram-JECS_2015.jpg\"><img loading=\"lazy\" decoding=\"async\" src=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/Rajaram-JECS_2015-300x102.jpg\" alt=\"Rajaram JECS_2015\" width=\"300\" height=\"102\" class=\"alignnone size-medium wp-image-259\" srcset=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Rajaram-JECS_2015-300x102.jpg 300w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Rajaram-JECS_2015.jpg 592w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/><\/a><\/p>\n<p><strong>Layered thermal metamaterials for the directing and harvesting of conductive heat<\/strong><br \/>\nP. R. Bandaru, K. P. Vemuri, F. M. Canbazoglu, and R. S. Kapadia,<br \/>\n<em>AIP Advances<\/em> 5, 053403 (2015); http:\/\/dx.doi.org\/10.1063\/1.4916220<\/p>\n<p><strong>2014<\/strong><\/p>\n<p><strong>Guiding conductive heat flux through thermal metamaterials<\/strong>,<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Guiding-conductive-heat-flux_Vemuri_APL.pdf\">pdf<\/a>  K. Vemuri, F. Canbazoglu, and P.R. Bandaru, <em> Applied Physics Letters<\/em>, vol. 105, p. 193904 (2014)<br \/>\n<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/Heat-flux-bending-_-Krishan-AIP.jpg\"><img loading=\"lazy\" decoding=\"async\" src=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/Heat-flux-bending-_-Krishan-AIP-300x225.jpg\" alt=\"Heat flux bending _ Krishan AIP\" width=\"300\" height=\"225\" class=\"alignnone size-medium wp-image-257\" srcset=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Heat-flux-bending-_-Krishan-AIP-300x225.jpg 300w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Heat-flux-bending-_-Krishan-AIP-624x468.jpg 624w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Heat-flux-bending-_-Krishan-AIP.jpg 720w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/><\/a><\/p>\n<p><strong>Enhanced electrical current densities in electrochemical systems through the use of nano structured electrodes<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Yamada_enhanced-electrical-current-desnities_APL.pdf\">pdf<\/a> H. Yamada and P.R. Bandaru,<em> Applied Physics Letters<\/em>, vol. 104, p. 213901 (2014)<\/p>\n<p><strong>Anomalous refraction of heat flux in thermal metamaterials<\/strong>,<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Anomalous-refraction_Vemuri_APL-_2014.pdf\">pdf<\/a> K. Vemuri and P.R. Bandaru, <em> Applied Physics Letters<\/em>, vol. 104, p. 213901 (2014)<\/p>\n<p><strong>Experimental evidence for the bending of heat flux in a thermal metamaterial<\/strong>,  <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Exp-evidence_Tianzhi-Yang_2014.pdf\">pdf<\/a>, T. Yang, K. Vemuri and P.R. Bandaru,<em> Applied Physics Letters<\/em>, vol. 105, p. 083908 (2014)<\/p>\n<p><strong>Anomalous decrease of the specific heat capacity at the electrical and thermal conductivity percolation threshold in nano composites<\/strong>, B-W. Kim, S.-H. Park, R.S. Kapadia, and P.R. Bandaru, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Anomalous-Specific-heat-_Byung-KIM-_APL.pdf\">pdf<\/a> ,<em> Applied Physics Letters<\/em>, vol. 105, p. 253108 (2014)<\/p>\n<p><strong>Heat flux concentration through polymeric thermal lenses<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Kapadia_Heat-flux-concentration_APL.pdf\">pdf<\/a>, R. S. Kapadia and P. R. Bandaru, <em> Applied Physics Letters<\/em>, vol. 105, p. 233903 (2014)<\/p>\n<p><strong>Spreading of triboelectrically charged granular matter<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Spreading-of-triboelectrical-matter_TIFR.pdf\">pdf<\/a>,  D. Kumar, A. Sane, S. Gohil, P.R. Bandaru, S. Bhattacharya &#038; S.Ghosh,, <em>Scientific Reports (Nature)<\/em> 4, Article: 5275  doi:10.1038\/srep05275<\/p>\n<p><strong>Percolation of gallium dominates the electrical resistance of focused ion beam deposited metals<\/strong>,  <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Percolation-of-Ga_H-Faraby_APL-_2014.pdf\">pdf<\/a>, H. Faraby, M. DiBattista, P.R. Bandaru, <em>Applied Physics Letters<\/em>, vol. 104 (17), p. 173107 (2014)<\/p>\n<p><strong>Reduced electrical impedance of SiO<sub>2<\/sub>, deposited through focused ion beam based systems, due to impurity percolation<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Reduced-electrical-impedance-of-SiO2_JAP_Faraby.pdf\">pdf<\/a> H. Faraby, M. DiBattista, P.R. Bandaru, <em>Journal of Applied Physics<\/em>, vol. 116, p. 204301 (2014)<\/p>\n<p><strong>A Methodology for Quantitatively Characterizing the Dispersion of Nanostructures in Polymers and Composites<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Materials-Research-Letters_Pfeifer.pdf\">pdf<\/a> S. Pfeifer and P.R. Bandaru, Materials Research Letters, vol. 2(3), p, 166 (2014).<\/p>\n<p><strong>2013<\/strong><\/p>\n<p><strong>Geometrical considerations in the control and manipulation of conductive heat flux in multilayered thermal metamaterials<\/strong>, <em> Applied Physics Letters<\/em>,<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Geometric-considerations_Thermal-metamaterials_APL.pdf\">pdf<\/a>, K. Vemuri and P.R. Bandaru,  vol. 103, p. 133111 (2013)<\/p>\n<p><strong>Evidence of percolation related power law behavior in the thermal conductivity of nanotube\/polymer composites<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Percolation_APL-1_Byung-Kim.pdf\">pdf<\/a> B-W. Kim, S.-H. Park, R.S. Kapadia, and P.R. Bandaru, <em> Applied Physics Letters<\/em>, vol. 102, p. 243105 (2013)<\/p>\n<p><strong>Optical methods for the measurement of thermal conductivity<\/strong>, pdf<br \/>\nP.R. Bandaru and M.S. Aubain, Handbook of Measurement in Science and Engineering, vol. 2, Editor: M.Kutz, John Wiley Inc., (2013)<\/p>\n<p><strong>The Influence of Carbon Nanotube Aspect Ratio on Thermal Conductivity Enhancement in Nanotube\u2013Polymer Composites<\/strong>, R. S. Kapadia, B.M. Louie and P. R. Bandaru, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/Rahul-_ASME-J-Heat-Transfer.pdf\">pdf<\/a><em>ASME Journal of Heat Transfer<\/em>, 136(1), 011303 (2013) <\/p>\n<p><strong>Limits to the magnitude of capacitance in carbon nanotube array electrode based electrochemical capacitors<\/strong><a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/BandaruP_A-I.-61.pdf\">pdf<\/a><br \/>\nH. Yamada and P.R. Bandaru, Applied Physics Letters, vol. 102, 173113, (2013).<br \/>\n<a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/Hidenori_Quantum-capacitance.jpg\"><img loading=\"lazy\" decoding=\"async\" src=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/04\/Hidenori_Quantum-capacitance-139x300.jpg\" alt=\"Hidenori_Quantum capacitance\" width=\"139\" height=\"300\" class=\"alignnone size-medium wp-image-258\" srcset=\"https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Hidenori_Quantum-capacitance-139x300.jpg 139w, https:\/\/nanomaterials.ucsd.edu\/wp-content\/uploads\/2015\/04\/Hidenori_Quantum-capacitance.jpg 156w\" sizes=\"auto, (max-width: 139px) 100vw, 139px\" \/><\/a><\/p>\n<p><strong>Modeling High Energy Density Electrical Inductors Operating at THz Frequencies Based on Coiled Carbon Nanotubes<\/strong> <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/BandaruP_A-I.-60.pdf\">pdf<\/a><br \/>\nH. Faraby. A.M. Rao, and P.R. Bandaru, IEEE Electron Device Letters, vol. 34, 807, (2013).<\/p>\n<p><strong>Superior electrical and mechanical characteristics observed through the incorporation of coiled carbon nanotubes, in comparison to non-coiled forms in polymers<\/strong><a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/BandaruP_A-I.-59.pdf\">pdf<\/a><br \/>\nS.-H. Park, D.-J. Yun, P. Theilmann, P.R. Bandaru, Polymer, vol. 54, 1318, (2013).<\/p>\n<p><strong>Enhanced Capacitance in closely spaced carbon nanotube arrays<\/strong> <a href=\"https:\/\/pbandaru.files.wordpress.com\/2015\/01\/cnt-array-characteristics_hoefer_2013.pdf\">pdf<\/a><br \/>\nM. Hoefer and P.R. Bandaru, Journal of the Electrochemical Society, vol. 160 (6) H360-H367, (2013).<\/p>\n<p><strong>Modeling the Relative Dielectric Permittivity and Impedance of Carbon Nanotube Constituted Polymer Composites in the Sub-GHz Regime<\/strong><a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/BandaruP_A-I.pdf-57.pdf\">pdf<\/a><br \/>\nS. Pfeiffer, S-H. Park, and P.R. Bandaru, ECS Solid State Letters, vol. 2, M5, (2013). <\/p>\n<p><strong>2012<\/strong><\/p>\n<p><strong>Ultra-high Optical Absorption Efficiency From The Ultraviolet To The Infra-red Using Multi-walled Carbon Nanotube (MWCNT) ensembles<\/strong> <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/BandaruP_A-I.-56.pdf\">pdf<\/a><br \/>\nA. B. Kaul, J.B. Coles, M. Eastwood, R.O. Green and P.R. Bandaru, Small, vol. 48, 638, (2012). <\/p>\n<p><strong>Optimization of microwave absorption of carbon nanotube composites through the use of carboxyl-epoxide functional group linkages<\/strong><a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/BandaruP_A-I.-55.pdf\">pdf<\/a> pdf<br \/>\nP. Theilmann, K.M. Chu, P.R. Bandaru, P. Asbeck, and S.H. Park , Electronics Letters, vol. 48, 638, (2012).<\/p>\n<p><strong>Feasibility of enhancing the thermoelectric power factor in GaNAs<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/BandaruP_A-I.-54.pdf\">pdf<\/a><br \/>\nP. Pichanusakorn, Y. J. Kuang, C. Patel, C. W. Tu, and P. R. Bandaru, Physical Review B,  vol. 86, 085314, (2012).<\/p>\n<p><strong>2011<\/strong><\/p>\n<p><strong>In-plane thermal conductivity determination through thermoreflectance analysis and measurements<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/BandaruP_A-I.-53.pdf\">pdf<\/a><br \/>\nM.S. Aubain and P.R. Bandaru, Journal of Applied Physics, vol. 110, 084313, (2011) (online\/in press)<\/p>\n<p><strong>The influence of dopant type and carrier concentration on the effective mass and Seebeck coefficient of GaNAs thin films<\/strong><a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/BandaruP_A-I.-52.pdf\">pdf<\/a><br \/>\nP. Pichanusakorn, Y.J. Kuang, C.J. Patel, C.W. Tu, and P.R. Bandaru, Applied Physics Letters, vol. 99, 072114, 2011<\/p>\n<p><strong>Determination of diminished thermal conductivity in silicon thin films using scanning thermoreflectance thermometry<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/BandaruP_A-I.-51.pdf\">pdf<\/a><br \/>\nM.S. Aubain and P.R. Bandaru, Applied Physics Letters, vol. 97, 253102, 2011<\/p>\n<p><strong>Optical methods for the measurement of thermal conductivity<\/strong>,<br \/>\n M.S. Aubain and P.R. Bandaru, Encyclopedia of Engineering Measurements, John Wiley Inc., 2011<\/p>\n<p><strong>The experimental determination of the onset of electrical and thermal conductivity percolation thresholds in carbon nanotube-polymer composites<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Byung-Kim-_MRS-proceedings.pdf\">pdf<\/a><br \/>\nB-W. Kim, S.Pfeifer, S-H. Park, and P.R. Bandaru, Materials Research Society symposium proceedings, December, 2010<\/p>\n<p><strong>2010<\/strong><\/p>\n<p><strong>Elastic Response of Carbon Nanotube Forests to Aerodynamic Stresses<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/BandaruP_A-I.-50.pdf\">pdf<\/a><br \/>\nI. Battiato, P.R. Bandaru, and D.M. Tartakovsky, Physical Review Letters, 105, 144504, (2010)<\/p>\n<p><strong>In-plane thermal conductivity determination in silicon-on-insulator structures through thermoreflectance measurements<\/strong> pdf<br \/>\nM. Aubain and P.R. Bandaru, Thermoelectric Materials &#8211; Growth, Properties, Novel Characterization Methods, and Applications,<br \/>\nMaterials Research Society symposium, April, 2010<\/p>\n<p><strong>The influence of coiled nanostructure on the enhancement of dielectric constants and electromagnetic shielding efficiency in polymer composites<\/strong> pdf<br \/>\nS-H. Park, P. Theilmann, K. Yang, A.M. Rao, and P.R. Bandaru, Applied Physics Letters, vol.96, 043115 (2010)<br \/>\n&#8211; selected for the Virtual Journal of Nanoscale Science &#038; Technology, (2010)<\/p>\n<p><strong>Analysis of electrical percolation thresholds in carbon nanotube networks, using the Weibull probability distribution<\/strong> <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Weibull-probability-CNTs-JAP_2010.pdf\">pdf<\/a><br \/>\nS. Pfeifer, S.-H. Park and P.R. Bandaru, Journal of Applied Physics, vol.108, 024305, (2010)<br \/>\n&#8211; selected for the Virtual Journal of Nanoscale Science &#038; Technology, (July, 2010)<\/p>\n<p><strong>Defect engineering of the electrochemical characteristics of carbon nanotube varieties<\/strong> <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/JAP_Hoefer_Bandaru__defect-engineering_2010.pdf\">pdf<\/a><br \/>\nM. Hoefer and P.R. Bandaru, Journal of Applied Physics, vol.108, 034308, (2010)<br \/>\n&#8211; selected for the Virtual Journal of Nanoscale Science &#038; Technology, (August, 2010)<\/p>\n<p><strong>Minimum length scales for enhancement of the power factor in thermoelectric nanostructures<\/strong><a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/JAP_Minimum-length-scales_2010.pdf\">pdf<\/a><br \/>\nP. Pichanusakorn, and P.R. Bandaru, Journal of Applied Physics, vol.107, 074304, (2010)<\/p>\n<p><strong>Improvement of the mechanical properties of carbon nanotube\/polymer composites through the use of carboxyl-epoxide functional group linkages<\/strong> <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Polymer_CNT-mech-properties_Park_Bandaru_2010.pdf\">pdf<\/a><\/p>\n<p>S-H. Park and P.R. Bandaru, Polymer, 51, 5071, (2010)<\/p>\n<p><strong>An outline of the synthesis and properties of silicon nanowires<\/strong> <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Semicond-sci-and-Tech_Si-nanowires_review_2010.pdf\">pdf<\/a><br \/>\n    P.R. Bandaru and P. Pichanusakorn, Semiconductor Science and Technology, vol.25, 024003 (2010)<\/p>\n<p><strong>Nanostructured Thermoelectrics<\/strong> <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/MSER_Nanostructured-thermoelectrics_2010.pdf\">pdf<\/a><br \/>\nP. Pichanusakorn, and P.R. Bandaru, Materials Science and Engineering \u2013 Reports (R), vol. 67, p. 19 (2010)<\/p>\n<p><strong>Carbon nanotube Y-junctions<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Encyc_Nanophysics_CNT-Y-junctions_2010.pdf\">pdf<\/a><br \/>\nP.R. Bandaru, Handbook of Nanophysics, Taylor &#038; Francis (CRC Press), accepted (May, 2010)<\/p>\n<p>BOOK CHAPTER \u201cElectronic and Photonic Applications of One-Dimensional Carbon and Silicon Nanostructures\u201d pdf<br \/>\nin Encyclopedia of Semiconductor Nanotechnology, A. Kaul and P.R. Bandaru<br \/>\nEditors: A. Umar (American Scientific Publishers)<\/p>\n<p><strong>2009 and pre-<\/strong><\/p>\n<p><strong>Determination and enhancement of the capacitance contributions in carbon nanotube based electrode systems<\/strong> pdf<br \/>\n M. Hoefer and P.R. Bandaru, Applied Physics Letters, vol. 95, 183108, (2009)<br \/>\n&#8211; selected for the Virtual Journal of Nanoscale Science &#038; Technology, (2009)<\/p>\n<p><strong>The response of carbon nanotube ensembles to fluid flow: Applications to mechanical property measurements and diagnostics<\/strong> pdf<br \/>\nC. Ni, C. Deck, K.S. Vecchio, and P.R. Bandaru, Journal of Applied Physics, vol.106, 074304, (2009)<br \/>\n           &#8211; selected for the Virtual Journal of Nanoscale Science &#038; Technology, (2009).<\/p>\n<p><strong>Determination of thermal parameters of one-dimensional nanostructures through a thermal transient method<\/strong>, <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/JTAC_1d-nanostructures_2009.pdf\">pdf<\/a><br \/>\nA.    Arriagada, E.T. Yu, and P.R. Bandaru, Journal of Thermal Analysis and Calorimetry, vol. 97, 1023-1026, (2009)<\/p>\n<p><strong>A diminished thermal conductivity of Si\/SiGe multilayers, established through current frequency variation<\/strong> <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/MRS_high-frequency-3-omega_Dooraghi_2009.pdf\">pdf<\/a><br \/>\nA.    Dooraghi, D. Krommenhoek, N. Elsner, and P.R. Bandaru, Materials Research Society symposium on<br \/>\nNanoscale Heat Transport\u2014From Fundamentals to Devices (2009)<\/p>\n<p><strong>Enhanced electromagnetic interference shielding through the use of functionalized carbon nanotube-reactive polymer composites<\/strong> <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/IEEE-Trans_nanotech_CNT_Polymer-composites_2010.pdf\">pdf<\/a><br \/>\nS-H. Park, P. Theilmann, P. Asbeck, P.R. Bandaru, IEEE Transactions of Nanotechnology, TNANO.2009.2032656, (2009)<\/p>\n<p><strong>Enhanced optical absorption cross-section characteristics of multi-wall carbon nanotubes<\/strong> pdf<br \/>\n    C. Ni and P.R. Bandaru, Carbon, vol.47, 2898, (2009)  <\/p>\n<p><strong>The optimal Seebeck coefficient for obtaining the maximum power factor in thermoelectrics<\/strong> pdf<br \/>\n P. Pichanusakorn, and P.R. Bandaru, P.R., Applied Physics Letters, vol. 94, p. 223108, (2009)<\/p>\n<p><strong>Enhanced dielectric constants and shielding effectiveness of uniformly dispersed functionalized carbon nanotube composites<\/strong> pdf<br \/>\n S.-H. Park, P. Theilmann, P. Asbeck, P.R. Bandaru, Applied Physics Letters, vol. 94, p. 243111, (2009)<br \/>\n&#8211; selected for the Virtual Journal of Nanoscale Science &#038; Technology, 2009.<\/p>\n<p><strong>InP layer transfer with masked implantation<\/strong> pdf<br \/>\nW. Chen, P.R. Bandaru, C.W. Tang, K.M. Lau, T.F. Kuech, and S.S. Lau, Electrochemical and Solid State Letters, vol. 12, HH149, (2009)<\/p>\n<p><strong>Toxicity issues in the application of carbon nanotubes to biological systems<\/strong> <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Nanomedicine_Firme_Bandaru_Toxicology_20101.pdf\">pdf<\/a><br \/>\nC. Firme and P.R. Bandaru, Nanomedicine: Nanotechnology, Biology, and Medicine, doi:10.1016\/j.nano.2009.07.003 (2009)<\/p>\n<p>     &#8211; selected for the Virtual Journal of Nanotechnology Environment, Health and Safety (2010) http:\/\/icon.rice.edu\/virtualjournal.cfm<\/p>\n<p><strong>Geometry transformation and alterations of periodically patterned Si nanotemplates by dry oxidation pdf<\/strong><br \/>\nJ. Park, L.H. Chen, D. Hong, C. Choi, M. Loya, K Brammer, P.R. Bandaru, and S. Jin, NANO, vol. 20, 015303, (2009)<\/p>\n<p><strong>Morphology control of carbon nanotubes through focused ion beams<\/strong> pdf<br \/>\nM. Loya, J.E. Park, L.H. Chen, K.S. Brammer, P.R. Bandaru, and S. Jin, NANO, vol. 3, p. 449-454, (2009)<\/p>\n<p><strong>BOOK: Nanotubes, Nanowires, Nanobelts and Nanocoils- Promise, Expectations, and Status<\/strong>,<br \/>\nEditors: P.R. Bandaru, S. Grego, and I. Kinloch, vol. 1142, Materials Research Society, Warrendale, PA<\/p>\n<p><strong>BOOK CHAPTER in Carbon Nanotubes- Multifunctional Materials<br \/>\nY-branched Carbon Nanotubes: Synthesis and Electrical Applications<\/strong>,<br \/>\nP.R. Bandaru<br \/>\nEditors: P.R. Somani and M. Umeno<\/p>\n<p><strong>Modification of the Electrical Characteristics of Single Wall Carbon Nanotubes Through Selective Functionalization<\/strong>,<br \/>\nC.Ni, J. Chattopadhyay, W. E. Billups, and P. R. Bandaru Applied Physics Letters, 93 (2008): 243113.<\/p>\n<p><strong>Tailoring the Electrochemical behavior of multiwalled carbon nanotubes through Argon and Hydrogen ion irradiation<\/strong>, pdf<br \/>\n J.A. Nichols, H. Saito, M. Hoefer, and P.R. Bandaru, Electrochemical and Solid State Letters, vol. 11(4), K35-K39, (2008)<br \/>\n&#8211; also accepted to the Virtual Journal of Nanoscale Science &#038; Technology, (2008).<\/p>\n<p><strong>Giant birefringence in multi-slotted silicon nanophotonic waveguides<\/strong> pdf<br \/>\nS. H. Yang, M. L. Cooper, P. R. Bandaru and S. Mookherjea, Optics Express, Vol. 16, 8306-8316 (2008)<\/p>\n<p><strong>Localization in silicon nanophotonic slow light waveguides<\/strong> pdf<br \/>\n S. Mookherjea, J.S. Park, S.H-Yang, and P.R. Bandaru, Nature Photonics, vol. 2, p. 90, (2008)<\/p>\n<p><strong>Increasing electrical conductivity in sputter-deposited Si\/SiGe multilayers through electrical pulse based annealing<\/strong>, pdf, P. Pichanusakorn, N.B. Elsner, and P.R. Bandaru, Electronics Letters, vol. 44, no. 21, p. 1274 (2008)<\/p>\n<p><strong>Optical determination of the flexural rigidity of carbon nanotube ensembles<\/strong>, pdf<br \/>\n C. Ni, C. Deck, K.S. Vecchio, and P.R. Bandaru, Applied Physics Letters, vol. 92, 173106, (2008)<br \/>\n&#8211; selected for the Virtual Journal of Nanoscale Science &#038; Technology, (2008)<\/p>\n<p><strong>Rational synthesis of helically coiled carbon nanowires and nanotubes through the use of tin and indium catalysts<\/strong>, pdf<br \/>\nW. Wang, K. Yang, J. Gaillard, P.R. Bandaru, and A.M. Rao, Advanced Materials, vol. 20, p. 179-182, (2008)<\/p>\n<p><strong>The effect of surface texture and geometry on spoof surface plasmon dispersion<\/strong>, pdf<br \/>\nS.-H. Yang and P.R. Bandaru, Optical Engineering, vol. 47 (20), p. 29001, (2008)<\/p>\n<p><strong>Increasing Mn substitution in magnetic semiconductors through controlled ambient annealing processes<\/strong>, pdf<br \/>\n J.P. Hollingsworth and P.R. Bandaru, Materials Science and Engineering B, vol. 151, p 152-156, (2008)<\/p>\n<p><strong>Artificial introduction of defects into vertically aligned multiwalled carbon nanotube ensembles: Application to electrochemical sensors <\/strong>pdf<br \/>\n J.A. Nichols, H. Saito, C. Deck, and P.R. Bandaru, Journal of Applied Physics, vol. 102, 064306, (2007)<br \/>\n&#8211; selected for the Virtual Journal of Nanoscale Science &#038; Technology, 2008.<\/p>\n<p><strong>An experimental study of the reactive ion etching of GaP using BCl3 plasma processing<\/strong>, pdf<br \/>\nS.-H. Yang and P.R. Bandaru, Materials Science and Engineering B, vol. 143, p 27-30, (2007)<\/p>\n<p><strong>A plausible mechanism for the evolution of helical forms in nanostructure growth<\/strong>, pdf<br \/>\n P.R. Bandaru, C. Daraio, K. Yang, and A.M. Rao, Journal of Applied Physics, vol. 101, no.9, 094307 (2007)<br \/>\n\u2013 selected for the Virtual Journal of Nanoscale Science &#038; Technology, May21, (2007).<\/p>\n<p><strong>Electrical Applications for Novel Carbon Nanotube Morphologies: Does function follow shape?<\/strong>, pdf<br \/>\nP.R. Bandaru, A.M. Rao, Journal of Materials, Special Issue on Nanomaterials for Electronic Applications, vol. 7. p. 33-38, (2007): Invited paper<\/p>\n<p><strong>Electrical Properties and Applications of Carbon Nanotube Structures<\/strong> pdf<br \/>\nP.R. Bandaru, Special Issue on Fullerenes and Carbon Nanotubes, Journal of Nanoscience and Nanotechnology, vol. 7. p. 1239-1267, (2007): Invited paper<\/p>\n<p><strong>Electrical Characterization of Carbon Nanotube Y-junctions: a foundation for new nanoelectronics<\/strong>, pdf<br \/>\n P.R. Bandaru, Journal of Materials Science, vol. 42, p. 1809-1818, (2007): Invited paper<\/p>\n<p><strong>Enhanced Differential Conductance through Light Induced Current Switching in Mn12 Acetate molecular junctions<\/strong>, pdf<br \/>\n C. Ni, S. Shah, D. Hendrickson, P.R. Bandaru, Applied Physics Letters, vol. 89, 212104 (2006)  <\/p>\n<p><strong>Three-way electrical gating characteristics of metallic Y-junction carbon nanotubes<\/strong> <a href=\"http:\/\/nanomaterials-dev.ucsd.edu\/wp-content\/uploads\/2015\/01\/Three-way-electrical-gating_APL.pdf\">pdf<\/a><br \/>\nJ. Park, C. Daraio, S. Jin, P.R. Bandaru, J. Gaillard, and A.M. Rao, Applied Physics Letters, vol. 88, 243113, (2006)<br \/>\n  \u2013 selected for the Virtual Journal of Nanoscale Science &#038; Technology, May27, (2006).<\/p>\n<p><strong>Enhanced Room Temperature Ferromagnetism in Co- and Mn-Ion Implanted Silicon<\/strong>, pdf<br \/>\n P.R. Bandaru, J. Park, J.S. Lee, Y.J. Tang, L. H. Chen, S. Jin, S.A. Song, and J. O\u2019Brien, Applied Physics Letters, vol. 89, 112502, (2006)<\/p>\n<p><strong>Novel electrical switching behavior and logic in carbon nanotube Y-junctions<\/strong>, pdf<br \/>\n P.R. Bandaru, C. Daraio, S. Jin, and A.M. Rao, Nature Materials, vol. 4(9), 663-666, (2005)<\/p>\n<p><strong>Carbon-Nanotube based Non volatile memory<\/strong>, pdf<br \/>\nJ.P. Hollingsworth and P.R. Bandaru, Applied Physics Letters, Vol. 87, 23315, (2005)<br \/>\n &#8211; selected for the Virtual Journal of Nanoscale Science &#038; Technology, May27, (2005)<\/p>\n<p><strong>Control of Carbon Nanotube Morphology by Change of Applied Bias Field During Growth<\/strong>, pdf<br \/>\nL.-H. Chen, J. F. AuBuchon, A. Gapin, C. Daraio, P. Bandaru, S. Jin, D. W. Kim, and I. K. Yoo, and, C. M. Wang, Applied Physics Letters, Vol. 85, 5373, (2004)<\/p>\n<p><strong>Fabrication and characterization of low temperature (< 450oC) grown p-Ge\/n-Si photodetectors for silicon based photonics<\/strong>, pdf<br \/>\nP.R. Bandaru, S. Sahni, E. Yablonovitch, J. Liu, H.-J. Kim and Y.-H. Xie, Materials Science &#038; Engineering B, vol. 113, no. 1, 79, (2004).<\/p>\n<p><strong>Ge films grown on Si substrates by molecular-beam epitaxy below 450 <sup>o<\/sup>C<\/strong>, pdf<br \/>\n J. Liu, H.-J. Kim, O. Hulko, Y.-H. Xie, S. Sahni, P. Bandaru, and E. Yablonovitch, Journal of Applied Physics, vol. 96, no. 1, 916, (2004).<\/p>\n<p><strong>Single photoelectron trapping, storage, and detection in a field effect transistor<\/strong>, pdf<br \/>\n H. Kosaka, D.S. Rao, H. Robinson, P.R.Bandaru, K. Makita and E.Yablonovitch, Physical Review B Vol. 65, 045104, (2003)<\/p>\n<p><strong>Semiconductor surface-molecule interactions: wet etching of InP by a-hydroxy acids<\/strong>, pdf<br \/>\n P.R. Bandaru and E. Yablonovitch, Journal of the Electrochemical Society, 149(11), G599, (2002).<\/p>\n<p><strong>Photoconductance quantization in a single-photon detector<\/strong>, pdf<br \/>\n      H. Kosaka, D.S. Rao, H. Robinson, P. R. Bandaru, T. Sakamoto and E.Yablonovitch, Physical Review B (Rapid Communications), Vol. 65, 201307, (2002)<br \/>\n&#8211;  selected for the Virtual Journal of Nanoscale Science &#038; Technology, May27, (2002).<\/p>\n<p><strong>Magneto-optical properties of chromium substituted MnBi thin films<\/strong>, pdf<br \/>\nP. R. Bandaru, T. D. Sands, D. Weller and E. Marinero, Journal of Applied Physics, Vol. 86, No. 3, 1596, (1999).<\/p>\n<p><strong>Decoupling of the structural and magnetic phase transformations in magneto-optic MnBi thin films by the partial substitution of Mn by Cr<\/strong>, pdf<br \/>\nP. R. Bandaru, Timothy D. Sands, Yukiko Kubota and Ernesto Marinero, Applied Physics Letters, Vol. 72, No. 18, 2337, (1998)<\/p>\n<p><strong>Superparamagnetic nanocomposite of silver\/iron-oxide by inert gas condensation<\/strong>, pdf<br \/>\n T. Yamamoto, R.D. Shull, P.R. Bandaru, F. Cosandey, M. Croft, and T. Madey, T. Japanese Journal of Applied Physics, Part 2 (Letters), vol.33, L1301 (1994)<\/p>\n<p><strong>Precipitation hardening in nickel-copper base alloy Monel K 500<\/strong>, pdf<br \/>\nG.K. Dey, R. Tewari, Prabhakar Rao, S.L. Wadekar, S. Sundararaman, R.T. Savalia, R.T. and Banerjee, S. Metallurgical Transactions A, vol.24A, 2709 (1993)<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Packing fraction related transport in disordered quantum dot arrays, K. Eshraghi, S. Natani, &#038; P.R. Bandaru, Applied Physics Letters, link, vol. 126, p. 113102, (2025) Helical Phononic Modes Induced by a Screw Dislocation, Y. Zhou, R. Davis, P.R. Bandaru, &#038; D. Sievenpiper, Advanced Functional Materials, link, (2025 Long-range order of polygonal grain boundaries, N. Sarkar, [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"open","template":"","meta":{"footnotes":""},"class_list":["post-21","page","type-page","status-publish","hentry"],"_links":{"self":[{"href":"https:\/\/nanomaterials.ucsd.edu\/index.php?rest_route=\/wp\/v2\/pages\/21","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/nanomaterials.ucsd.edu\/index.php?rest_route=\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/nanomaterials.ucsd.edu\/index.php?rest_route=\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/nanomaterials.ucsd.edu\/index.php?rest_route=\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/nanomaterials.ucsd.edu\/index.php?rest_route=%2Fwp%2Fv2%2Fcomments&post=21"}],"version-history":[{"count":214,"href":"https:\/\/nanomaterials.ucsd.edu\/index.php?rest_route=\/wp\/v2\/pages\/21\/revisions"}],"predecessor-version":[{"id":647,"href":"https:\/\/nanomaterials.ucsd.edu\/index.php?rest_route=\/wp\/v2\/pages\/21\/revisions\/647"}],"wp:attachment":[{"href":"https:\/\/nanomaterials.ucsd.edu\/index.php?rest_route=%2Fwp%2Fv2%2Fmedia&parent=21"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}