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用于未来器件的面内各向同性/各向异性二维范德华异质结构

In-Plane Isotropic/Anisotropic 2D van der Waals Heterostructures for Future Devices.

作者信息

Neupane Guru Prakash, Zhou Kai, Chen Songsong, Yildirim Tanju, Zhang Peixin, Lu Yuerui

机构信息

College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen, 518052, Guangdong, China.

Research School of Engineering, College of Engineering and Computer Science, The Australian National University, Canberra, ACT, 2601, Australia.

出版信息

Small. 2019 Mar;15(11):e1804733. doi: 10.1002/smll.201804733. Epub 2019 Feb 4.

Abstract

Mono- to few-layers of 2D semiconducting materials have uniquely inherent optical, electronic, and magnetic properties that make them ideal for probing fundamental scientific phenomena up to the 2D quantum limit and exploring their emerging technological applications. This Review focuses on the fundamental optoelectronic studies and potential applications of in-plane isotropic/anisotropic 2D semiconducting heterostructures. Strong light-matter interaction, reduced dimensionality, and dielectric screening in mono- to few-layers of 2D semiconducting materials result in strong many-body interactions, leading to the formation of robust quasiparticles such as excitons, trions, and biexcitons. An in-plane isotropic nature leads to the quasi-2D particles, whereas, an anisotropic nature leads to quasi-1D particles. Hence, in-plane isotropic/anisotropic 2D heterostructures lead to the formation of quasi-1D/2D particle systems allowing for the manipulation of high binding energy quasi-1D particle populations for use in a wide variety of applications. This Review emphasizes an exciting 1D-2D particles dynamic in such heterostructures and their potential for high-performance photoemitters and exciton-polariton lasers. Moreover, their scopes are also broadened in thermoelectricity, piezoelectricity, photostriction, energy storage, hydrogen evolution reactions, and chemical sensor fields. The unique in-plane isotropic/anisotropic 2D heterostructures may open the possibility of engineering smart devices in the nanodomain with complex opto-electromechanical functions.

摘要

二维半导体材料的单层到少数层具有独特的固有光学、电子和磁性特性,这使其成为探测直至二维量子极限的基本科学现象以及探索其新兴技术应用的理想选择。本综述重点关注面内各向同性/各向异性二维半导体异质结构的基础光电研究和潜在应用。二维半导体材料的单层到少数层中强烈的光与物质相互作用、维度降低和介电屏蔽导致了强多体相互作用,从而形成了诸如激子、三重子和双激子等稳健的准粒子。面内各向同性导致准二维粒子,而各向异性则导致准一维粒子。因此,面内各向同性/各向异性二维异质结构导致准一维/二维粒子系统的形成,从而能够操控具有高结合能的准一维粒子群体以用于各种应用。本综述强调了此类异质结构中令人兴奋的一维 - 二维粒子动力学及其在高性能光发射器和激子极化激元激光器方面的潜力。此外,它们在热电、压电、光致伸缩、能量存储、析氢反应和化学传感器领域的应用范围也得到了拓宽。独特的面内各向同性/各向异性二维异质结构可能为在纳米领域设计具有复杂光机电功能的智能设备开辟可能性。

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