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二维纳米材料的表面等离激元学:性质与应用

Plasmonics of 2D Nanomaterials: Properties and Applications.

作者信息

Li Yu, Li Ziwei, Chi Cheng, Shan Hangyong, Zheng Liheng, Fang Zheyu

机构信息

School of Physics State Key Lab for Mesoscopic Physics Peking University Beijing 100871 China.

Academy for Advanced Interdisciplinary Studies Peking University Beijing 100871 China.

出版信息

Adv Sci (Weinh). 2017 Feb 16;4(8):1600430. doi: 10.1002/advs.201600430. eCollection 2017 Aug.

Abstract

Plasmonics has developed for decades in the field of condensed matter physics and optics. Based on the classical Maxwell theory, collective excitations exhibit profound light-matter interaction properties beyond classical physics in lots of material systems. With the development of nanofabrication and characterization technology, ultra-thin two-dimensional (2D) nanomaterials attract tremendous interest and show exceptional plasmonic properties. Here, we elaborate the advanced optical properties of 2D materials especially graphene and monolayer molybdenum disulfide (MoS), review the plasmonic properties of graphene, and discuss the coupling effect in hybrid 2D nanomaterials. Then, the plasmonic tuning methods of 2D nanomaterials are presented from theoretical models to experimental investigations. Furthermore, we reveal the potential applications in photocatalysis, photovoltaics and photodetections, based on the development of 2D nanomaterials, we make a prospect for the future theoretical physics and practical applications.

摘要

等离激元学在凝聚态物理和光学领域已经发展了数十年。基于经典麦克斯韦理论,集体激发在许多材料系统中展现出超越经典物理的深刻光与物质相互作用特性。随着纳米制造和表征技术的发展,超薄二维(2D)纳米材料引起了极大的兴趣并展现出非凡的等离激元特性。在此,我们阐述二维材料尤其是石墨烯和单层二硫化钼(MoS₂)的先进光学特性,回顾石墨烯的等离激元特性,并讨论二维混合纳米材料中的耦合效应。然后,从理论模型到实验研究介绍二维纳米材料的等离激元调控方法。此外,基于二维纳米材料的发展,我们揭示其在光催化、光伏和光电探测方面的潜在应用,并对未来的理论物理和实际应用进行展望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c3b/5566264/89f27dc022e6/ADVS-4-na-g001.jpg

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