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发光等离子体隧穿结:现状与展望。

Light-Emitting Plasmonic Tunneling Junctions: Current Status and Perspectives.

作者信息

Tang Jibo, Guo Quanbing, Wu Yu, Ge Junhao, Zhang Shunping, Xu Hongxing

机构信息

School of Physics and Technology and Key Laboratory of Artificial Micro- and Nano-structures of Ministry of Education, Wuhan University, Wuhan 430072, China.

Wuhan Institute of Quantum Technology, Wuhan 430206, China.

出版信息

ACS Nano. 2024 Jan 30;18(4):2541-2551. doi: 10.1021/acsnano.3c08628. Epub 2024 Jan 16.

Abstract

Quantum tunneling, in which electrons can tunnel through a finite potential barrier while simultaneously interacting with other matter excitation, is one of the most fascinating phenomena without classical correspondence. In an extremely thin metallic nanogap, the deep-subwavelength-confined plasmon modes can be directly excited by the inelastically tunneling electrons driven by an externally applied voltage. Light emission via inelastic tunneling possesses a great potential application for next-generation light sources, with great superiority of ultracompact integration, large bandwidth, and ultrafast response. In this Perspective, we first briefly introduce the mechanism of plasmon generation in the inelastic electron tunneling process. Then the state of the art in plasmonic tunneling junctions will be reviewed, particularly emphasizing efficiency improvement, precise construction, active control, and electrically driven optical antenna integration. Ultimately, we forecast some promising and critical prospects that require further investigation.

摘要

量子隧穿是指电子能够穿过有限势垒,同时与其他物质激发相互作用,这是最引人入胜的无经典对应现象之一。在极薄的金属纳米间隙中,由外部施加电压驱动的非弹性隧穿电子可直接激发深亚波长限制的等离子体模式。通过非弹性隧穿产生的发光在下一代光源方面具有巨大的潜在应用价值,具有超紧凑集成、大带宽和超快响应等巨大优势。在这篇观点文章中,我们首先简要介绍非弹性电子隧穿过程中等离子体产生的机制。然后将综述等离子体隧穿结的研究现状,特别强调效率提升、精确构建、主动控制以及电驱动光学天线集成。最后,我们预测了一些需要进一步研究的有前景且关键的方向。

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