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通过镜像偶极相互作用延长WSe单分子层的激子寿命,从而极大增强光电流。

Prolonging exciton lifetime of WSe monolayer through image dipole interaction leading to huge enhancement of photocurrent.

作者信息

Lee Kwang Jin, So Jae-Pil, Chamoli Sandeep Kumar, Lee Hoo-Cheol, Park Hong-Gyu, Cho Minhaeng

机构信息

Center for Molecular Spectroscopy and Dynamics, Institute for Basic Science (IBS), Seoul 02841, Republic of Korea.

Department of Physics, Korea University, Seoul 02841, Republic of Korea.

出版信息

Nanophotonics. 2023 Feb 13;12(4):695-703. doi: 10.1515/nanoph-2022-0590. eCollection 2023 Feb.

Abstract

Two-dimensional transition metal dichalcogenides (2D TMDs) have been demonstrated as one of the most outstanding materials not only for fundamental science but also for a wide range of photonic applications. However, an efficient way to control their excitonic properties is still needed for advanced applications with superior device performance. Here, we show that the exciton lifetime of WSe monolayer can be prolonged using metamaterials. We observe a ∼100% reduction in the electron-hole recombination rate of WSe monolayer placed on a hyperbolic metamaterial substrate and demonstrate that such a remarkable change results from the destructive image dipole interaction with the in-plane exciton transition dipole. Furthermore, this substantial increase in exciton lifetime leads to order-of-magnitude (10-fold) enhancement of photocurrent in the 2D WSe-based hybrid photodetector with metamaterials. Tailoring the optical transition properties of 2D TMD materials with specially designed metamaterials, demonstrated here, will pave the way for developing 2D material-based optoelectronics.

摘要

二维过渡金属二硫属化物(2D TMDs)已被证明是最杰出的材料之一,不仅适用于基础科学,也适用于广泛的光子应用。然而,对于具有卓越器件性能的先进应用而言,仍需要一种有效的方法来控制其激子特性。在此,我们表明使用超材料可以延长WSe单层的激子寿命。我们观察到放置在双曲线超材料衬底上的WSe单层的电子 - 空穴复合率降低了约100%,并证明这种显著变化是由与面内激子跃迁偶极子的破坏性镜像偶极子相互作用引起的。此外,激子寿命的大幅增加导致基于2D WSe的带有超材料的混合光电探测器中的光电流增强了一个数量级(10倍)。本文展示的用特别设计的超材料来定制二维TMD材料的光学跃迁特性,将为开发基于二维材料的光电子学铺平道路。

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