| Literature DB >> 30747519 |
Yan Shen1, Huanjun Chen1, Ningsheng Xu1, Yang Xing1, Hao Wang1, Runze Zhan1, Li Gong2, Jinxiu Wen1, Chao Zhuang1, Xuexian Chen1, Ximiao Wang1, Yu Zhang1, Fei Liu1, Jun Chen1, Juncong She1, Shaozhi Deng1.
Abstract
Light-driven electron emission plays an important role in modern optoelectronic devices. However, such a process usually requires a light field with either a high intensity or a high frequency, which is not favorable for its implementations and difficult for its integrations. To solve these issues, we propose to combine plasmonic nanostructures with nanoelectron emitters of low work function. In such a heterostructure, hot electrons generated by plasmon resonances upon light excitation can be directly injected into the adjacent emitter, which can subsequently be emitted into the vacuum. Electron emission of high efficiency can be obtained with light fields of moderate intensities and visible wavelengths, which is a plasmon-mediated electron emission (PMEE) process. We have demonstrated our proposed design using a gold-on-graphene (Au-on-Gr) nanostructure, which can have electron emission with light intensity down to 73 mW·cm-2. It should be noted that the field electron emission is not involved in such a PMEE process. This proposal is of interest for applications including cold-cathode electron sources, advanced photocathodes, and micro- and nanoelectronic devices relying on free electrons.Entities:
Keywords: Au-on-Gr nanostructure; electromagnetic field; hot electrons; plasmon-mediated electron emission (PMEE); vacuum electron emission
Year: 2019 PMID: 30747519 DOI: 10.1021/acsnano.8b08444
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881