Engineering sensitivity and spectral range of photodetection in van der Waals materials and hybrids

S. Sett, Aparna Parappurath, Navkiranjot Kaur Gill, N. Chauhan, A. Ghosh
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引用次数: 5

Abstract

Exploration of van der Waals heterostructures in the field of optoelectronics has produced photodetectors with very high bandwidth as well as ultra-high sensitivity. Appropriate engineering of these heterostructures allows us to exploit multiple light-to-electricity conversion mechanisms, ranging from photovoltaic, photoconductive to photogating processes. These mechanisms manifest in different sensitivity and speed of photoresponse. In addition, integrating graphene-based hybrid structures with photonic platforms provides a high gain-bandwidth product, with bandwidths ≫1 GHz. In this review, we discuss the progression in the field of photodetection in 2D hybrids. We emphasize the physical mechanisms at play in diverse architectures and discuss the origin of enhanced photoresponse in hybrids. Recent developments in 2D photodetectors based on room temperature detection, photon-counting ability, integration with Si and other pressing issues, that need to be addressed for these materials to be integrated with industrial standards have been discussed.
范德华材料和杂化材料中光电探测的工程灵敏度和光谱范围
在光电子领域对范德华异质结构的探索已经产生了具有非常高带宽和超高灵敏度的光电探测器。这些异质结构的适当工程使我们能够利用多种光-电转换机制,从光伏,光导到光门工艺。这些机制表现在不同的光响应灵敏度和速度上。此外,将基于石墨烯的混合结构与光子平台集成可以提供高增益带宽产品,带宽达到1 GHz。本文综述了二维杂化体光探测技术的研究进展。我们强调了在不同结构中起作用的物理机制,并讨论了混合材料中增强光响应的起源。讨论了基于室温检测、光子计数能力、与Si集成以及其他迫切问题的二维光电探测器的最新发展,这些问题需要解决,以使这些材料与工业标准集成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
6.40
自引率
0.00%
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