Literature DB >> 23452192

Embedding plasmonic nanostructure diodes enhances hot electron emission.

Mark W Knight1, Yumin Wang, Alexander S Urban, Ali Sobhani, Bob Y Zheng, Peter Nordlander, Naomi J Halas.   

Abstract

When plasmonic nanostructures serve as the metallic counterpart of a metal-semiconductor Schottky interface, hot electrons due to plasmon decay are emitted across the Schottky barrier, generating measurable photocurrents in the semiconductor. When the plasmonic nanostructure is atop the semiconductor, only a small percentage of hot electrons are excited with a wavevector permitting transport across the Schottky barrier. Here we show that embedding plasmonic structures into the semiconductor substantially increases hot electron emission. Responsivities increase by 25× over planar diodes for embedding depths as small as 5 nm. The vertical Schottky barriers created by this geometry make the plasmon-induced hot electron process the dominant contributor to photocurrent in plasmonic nanostructure-diode-based devices.

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Year:  2013        PMID: 23452192     DOI: 10.1021/nl400196z

Source DB:  PubMed          Journal:  Nano Lett        ISSN: 1530-6984            Impact factor:   11.189


  21 in total

1.  Plasmon-enabled degradation of organic micropollutants in water by visible-light illumination of Janus gold nanorods.

Authors:  Haoran Wei; Stephanie K Loeb; Naomi J Halas; Jae-Hong Kim
Journal:  Proc Natl Acad Sci U S A       Date:  2020-06-22       Impact factor: 11.205

Review 2.  Optical Metasurfaces for Energy Conversion.

Authors:  Emiliano Cortés; Fedja J Wendisch; Luca Sortino; Andrea Mancini; Simone Ezendam; Seryio Saris; Leonardo de S Menezes; Andreas Tittl; Haoran Ren; Stefan A Maier
Journal:  Chem Rev       Date:  2022-06-21       Impact factor: 72.087

3.  Using the plasmon linewidth to calculate the time and efficiency of electron transfer between gold nanorods and graphene.

Authors:  Anneli Hoggard; Lin-Yung Wang; Lulu Ma; Ying Fang; Ge You; Jana Olson; Zheng Liu; Wei-Shun Chang; Pulickel M Ajayan; Stephan Link
Journal:  ACS Nano       Date:  2013-12-03       Impact factor: 15.881

4.  Circularly polarized light detection with hot electrons in chiral plasmonic metamaterials.

Authors:  Wei Li; Zachary J Coppens; Lucas V Besteiro; Wenyi Wang; Alexander O Govorov; Jason Valentine
Journal:  Nat Commun       Date:  2015-09-22       Impact factor: 14.919

5.  Theoretical analysis of hot electron dynamics in nanorods.

Authors:  Chathurangi S Kumarasinghe; Malin Premaratne; Qiaoliang Bao; Govind P Agrawal
Journal:  Sci Rep       Date:  2015-07-23       Impact factor: 4.379

6.  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

7.  Hot plasmonic electrons for generation of enhanced photocurrent in gold-TiO2 nanocomposites.

Authors:  Lorcan J Brennan; Finn Purcell-Milton; Aurélien S Salmeron; Hui Zhang; Alexander O Govorov; Anatoly V Fedorov; Yurii K Gun'ko
Journal:  Nanoscale Res Lett       Date:  2015-02-05       Impact factor: 4.703

8.  Biological Targeting of Plasmonic Nanoparticles Improves Cellular Imaging via the Enhanced Scattering in the Aggregates Formed.

Authors:  Mena Aioub; Bin Kang; Megan A Mackey; Mostafa A El-Sayed
Journal:  J Phys Chem Lett       Date:  2014-07-05       Impact factor: 6.475

9.  Design of all-optical, hot-electron current-direction-switching device based on geometrical asymmetry.

Authors:  Chathurangi S Kumarasinghe; Malin Premaratne; Sarath D Gunapala; Govind P Agrawal
Journal:  Sci Rep       Date:  2016-02-18       Impact factor: 4.379

10.  Au@Nb@H x K1-xNbO3 nanopeapods with near-infrared active plasmonic hot-electron injection for water splitting.

Authors:  Ying-Chu Chen; Yu-Kuei Hsu; Radian Popescu; Dagmar Gerthsen; Yan-Gu Lin; Claus Feldmann
Journal:  Nat Commun       Date:  2018-01-16       Impact factor: 14.919

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