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二维过渡金属二硫属化物中增强的光与物质相互作用。

Enhanced light-matter interaction in two-dimensional transition metal dichalcogenides.

作者信息

Huang Lujun, Krasnok Alex, Alú Andrea, Yu Yiling, Neshev Dragomir, Miroshnichenko Andrey E

机构信息

School of Engineering and Information Technology, University of New South Wales, Canberra, ACT, 2600, Australia.

Department of Electrical and Computer Engineering, Florida International University, Miami, FL 33174, United States of America.

出版信息

Rep Prog Phys. 2022 Mar 8;85(4). doi: 10.1088/1361-6633/ac45f9.

Abstract

Two-dimensional (2D) transition metal dichalcogenide (TMDC) materials, such as MoS, WS, MoSe, and WSe, have received extensive attention in the past decade due to their extraordinary electronic, optical and thermal properties. They evolve from indirect bandgap semiconductors to direct bandgap semiconductors while their layer number is reduced from a few layers to a monolayer limit. Consequently, there is strong photoluminescence in a monolayer (1L) TMDC due to the large quantum yield. Moreover, such monolayer semiconductors have two other exciting properties: large binding energy of excitons and valley polarization. These properties make them become ideal materials for various electronic, photonic and optoelectronic devices. However, their performance is limited by the relatively weak light-matter interactions due to their atomically thin form factor. Resonant nanophotonic structures provide a viable way to address this issue and enhance light-matter interactions in 2D TMDCs. Here, we provide an overview of this research area, showcasing relevant applications, including exotic light emission, absorption and scattering features. We start by overviewing the concept of excitons in 1L-TMDC and the fundamental theory of cavity-enhanced emission, followed by a discussion on the recent progress of enhanced light emission, strong coupling and valleytronics. The atomically thin nature of 1L-TMDC enables a broad range of ways to tune its electric and optical properties. Thus, we continue by reviewing advances in TMDC-based tunable photonic devices. Next, we survey the recent progress in enhanced light absorption over narrow and broad bandwidths using 1L or few-layer TMDCs, and their applications for photovoltaics and photodetectors. We also review recent efforts of engineering light scattering, e.g., inducing Fano resonances, wavefront engineering in 1L or few-layer TMDCs by either integrating resonant structures, such as plasmonic/Mie resonant metasurfaces, or directly patterning monolayer/few layers TMDCs. We then overview the intriguing physical properties of different van der Waals heterostructures, and their applications in optoelectronic and photonic devices. Finally, we draw our opinion on potential opportunities and challenges in this rapidly developing field of research.

摘要

二维(2D)过渡金属二硫属化物(TMDC)材料,如MoS、WS、MoSe和WSe,在过去十年中因其非凡的电子、光学和热性能而受到广泛关注。当它们的层数从几层减少到单层极限时,它们从间接带隙半导体演变为直接带隙半导体。因此,由于量子产率高,单层(1L)TMDC中存在强烈的光致发光。此外,这种单层半导体还有另外两个令人兴奋的特性:激子的大结合能和谷极化。这些特性使它们成为各种电子、光子和光电器件的理想材料。然而,由于其原子级薄的外形因素,它们的性能受到相对较弱的光与物质相互作用的限制。共振纳米光子结构为解决这一问题并增强二维TMDC中的光与物质相互作用提供了一种可行的方法。在这里,我们概述了这一研究领域,展示了相关应用,包括奇异的光发射、吸收和散射特性。我们首先概述1L-TMDC中激子的概念以及腔增强发射的基本理论,然后讨论增强光发射、强耦合和谷电子学的最新进展。1L-TMDC的原子级薄特性使得能够通过多种方式调节其电学和光学性质。因此,我们接着回顾基于TMDC的可调谐光子器件的进展。接下来,我们调查使用1L或几层TMDC在窄带宽和宽带宽上增强光吸收的最新进展,以及它们在光伏和光电探测器中的应用。我们还回顾了最近在工程光散射方面的努力,例如通过集成共振结构(如等离子体/米氏共振超表面)或直接对单层/几层TMDC进行图案化来在1L或几层TMDC中诱导法诺共振、波前工程。然后我们概述不同范德华异质结构的有趣物理特性,以及它们在光电器件和光子器件中的应用。最后,我们对这个快速发展的研究领域中的潜在机遇和挑战发表我们的看法。

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