Literature DB >> 25395532

Nanophotonics. Plasmoelectric potentials in metal nanostructures.

Matthew T Sheldon1, Jorik van de Groep2, Ana M Brown1, Albert Polman2, Harry A Atwater3.   

Abstract

The conversion of optical power to an electric potential is of general interest for energy applications and is typically obtained via optical excitation of semiconductor materials. We developed a method for achieving electric potential that uses an all-metal geometry based on the plasmon resonance in metal nanostructures. In arrays of gold nanoparticles on an indium tin oxide substrate and arrays of 100-nanometer-diameter holes in 20-nanometer-thick gold films on a glass substrate, we detected negative and positive surface potentials during monochromatic irradiation at wavelengths below or above the plasmon resonance, respectively. We observed plasmoelectric surface potentials as large as 100 millivolts under illumination of 100 milliwatts per square centimeter. Plasmoelectric devices may enable the development of all-metal optoelectronic devices that can convert light into electrical energy.
Copyright © 2014, American Association for the Advancement of Science.

Entities:  

Year:  2014        PMID: 25395532     DOI: 10.1126/science.1258405

Source DB:  PubMed          Journal:  Science        ISSN: 0036-8075            Impact factor:   47.728


  16 in total

1.  Chemoelectronic circuits based on metal nanoparticles.

Authors:  Yong Yan; Scott C Warren; Patrick Fuller; Bartosz A Grzybowski
Journal:  Nat Nanotechnol       Date:  2016-03-14       Impact factor: 39.213

2.  Optical tracking of nanoscale particles in microscale environments.

Authors:  P P Mathai; J A Liddle; S M Stavis
Journal:  Appl Phys Rev       Date:  2016-03-10       Impact factor: 19.162

3.  From SERS to TERS and Beyond: Molecules as Probes of Nanoscopic Optical Fields.

Authors:  Patrick Z El-Khoury; Zachary D Schultz
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2020-12-15       Impact factor: 4.126

4.  A rich catalog of C-C bonded species formed in CO2 reduction on a plasmonic photocatalyst.

Authors:  Dinumol Devasia; Andrew J Wilson; Jaeyoung Heo; Varun Mohan; Prashant K Jain
Journal:  Nat Commun       Date:  2021-05-10       Impact factor: 14.919

5.  Distinguishing between plasmon-induced and photoexcited carriers in a device geometry.

Authors:  Bob Y Zheng; Hangqi Zhao; Alejandro Manjavacas; Michael McClain; Peter Nordlander; Naomi J Halas
Journal:  Nat Commun       Date:  2015-07-13       Impact factor: 14.919

6.  Effective Energy Transfer via Plasmon-Activated High-Energy Water Promotes Its Fundamental Activities of Solubility, Ionic Conductivity, and Extraction at Room Temperature.

Authors:  Chih-Ping Yang; Hsiao-Chien Chen; Ching-Chiung Wang; Po-Wei Tsai; Chia-Wen Ho; Yu-Chuan Liu
Journal:  Sci Rep       Date:  2015-12-10       Impact factor: 4.379

7.  Thermodynamic theory of the plasmoelectric effect.

Authors:  Jorik van de Groep; Matthew T Sheldon; Harry A Atwater; Albert Polman
Journal:  Sci Rep       Date:  2016-03-18       Impact factor: 4.379

8.  Visualizing the bidirectional electron transfer in a Schottky junction consisting of single CdS nanoparticles and a planar gold film.

Authors:  Zhimin Li; Yimin Fang; Yongjie Wang; Yingyan Jiang; Tao Liu; Wei Wang
Journal:  Chem Sci       Date:  2017-05-18       Impact factor: 9.825

9.  Disentangling charge carrier from photothermal effects in plasmonic metal nanostructures.

Authors:  Chao Zhan; Bo-Wen Liu; Yi-Fan Huang; Shu Hu; Bin Ren; Martin Moskovits; Zhong-Qun Tian
Journal:  Nat Commun       Date:  2019-06-17       Impact factor: 14.919

10.  Interplay of hot electrons from localized and propagating plasmons.

Authors:  Chung V Hoang; Koki Hayashi; Yasuo Ito; Naoki Gorai; Giles Allison; Xu Shi; Quan Sun; Zhenzhou Cheng; Kosei Ueno; Keisuke Goda; Hiroaki Misawa
Journal:  Nat Commun       Date:  2017-10-03       Impact factor: 14.919

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