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通过位置和偏振相关的真空场干涉定制二维激子的辐射衰变动力学

Customizing Radiative Decay Dynamics of Two-Dimensional Excitons via Position- and Polarization-Dependent Vacuum-Field Interference.

作者信息

Park Sanghyeok, Kim Dongha, Choi Yun-Seok, Baucour Arthur, Kim Donghyeong, Yoon Sangho, Watanabe Kenji, Taniguchi Takashi, Shin Jonghwa, Kim Jonghwan, Seo Min-Kyo

机构信息

Department of Physics, Korea Advanced Institute of Science and Technology, Daejeon 34141, Republic of Korea.

Department of Chemistry, Korea Advanced Institute of Science and Technology, Daejeon 34141, Republic of Korea.

出版信息

Nano Lett. 2023 Mar 22;23(6):2158-2165. doi: 10.1021/acs.nanolett.2c04604. Epub 2023 Feb 28.

Abstract

Embodying bosonic and interactive characteristics in two-dimensional space, excitons in transition metal dichalcogenides (TMDCs) have garnered considerable attention. The utilization of the strong-correlation effects, long-range transport, and valley-dependent properties requires customizing exciton decay dynamics. Vacuum-field manipulation allows radiative decay engineering without disturbing intrinsic material properties. However, conventional flat mirrors cannot customize the radiative decay landscape in TMDC's plane or support vacuum-field interference with desired spectrum and polarization properties. Here, we present a meta-mirror platform resolving the issues with more optical degrees of freedom. For neutral excitons of the monolayer MoSe, the optical layout formed by meta-mirrors manipulated the radiative decay rate in space by 2 orders of magnitude and revealed the statistical correlation between emission intensity and spectral line width. Moreover, the anisotropic meta-mirror demonstrated polarization-dependent radiative decay control. Our platform would be promising to tailor two-dimensional distributions of lifetime, density, diffusion, and polarization of TMDC excitons in advanced opto-excitonic applications.

摘要

过渡金属二硫属化物(TMDCs)中的激子在二维空间中体现出玻色子和相互作用特性,因此备受关注。利用强关联效应、长程输运和谷相关特性需要定制激子衰变动力学。真空场操纵允许在不干扰材料固有特性的情况下进行辐射衰变工程。然而,传统的平面镜无法在TMDC平面中定制辐射衰变态势,也无法支持具有所需光谱和偏振特性的真空场干涉。在此,我们展示了一个具有更多光学自由度的超表面镜平台,解决了这些问题。对于单层MoSe的中性激子,超表面镜形成的光学布局将空间中的辐射衰变率控制了2个数量级,并揭示了发射强度与谱线宽度之间的统计相关性。此外,各向异性超表面镜展示了偏振相关的辐射衰变控制。我们的平台有望在先进的光激子应用中定制TMDC激子的寿命、密度、扩散和偏振的二维分布。

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