脉冲激光沉积过渡金属二硫族化合物异质结构的高效光电探测

Deependra Kumar Singh, Karuna Kar Nanda, Saluru Baba Krupanidhi
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引用次数: 1

摘要

在过去的几十年里,光电探测器被认为是许多光子器件的关键部件,在各种重要的应用中得到了应用。然而,基于传统块状半导体的pd在器件性能方面仍面临诸多挑战。为了克服这些限制,一种被称为过渡金属二硫族化合物(TMDCs)的新型二维材料显示出巨大的前景。据报道,基于tmdcs的pd表现出与最先进的pd相比具有竞争力的数字,然而,由于传统制造方法的限制,它们的生产仍然局限于实验室规模。与这些传统的合成方法相比,脉冲激光沉积(PLD)技术具有许多优点。PLD是一种物理气相沉积方法,可在超高真空环境中进行。因此,产品应该是干净的,没有污染物。最重要的是,PLD可以实现大面积薄膜,这在现代半导体工业中具有巨大的潜力。在本章中,讨论了PLD在光探测应用中的TMDCs的增长,并详细分析了该领域的最新进展。本章将通过提供对克服与当前设备相关的缺点的策略的展望和观点来结束。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pulsed Laser Deposition of Transition Metal Dichalcogenides-Based Heterostructures for Efficient Photodetection
From the past few decades, photodetectors (PDs) are being regarded as crucial components of many photonic devices which are being used in various important applications. However, the PDs based on the traditional bulk semiconductors still face a lot of challenges as far as the device performance is concerned. To overcome these limitations, a novel class of two-dimensional materials known as transition metal dichalcogenides (TMDCs) has shown great promise. The TMDCs-based PDs have been reported to exhibit competitive figures of merit to the state-of-the-art PDs, however, their production is still limited to laboratory scale due to limitations in the conventional fabrication methods. Compared to these traditional synthesis approaches, the technique of pulsed laser deposition (PLD) offers several merits. PLD is a physical vapor deposition approach, which is performed in an ultrahigh-vacuum environment. Therefore, the products are expected to be clean and free from contaminants. Most importantly, PLD enables actualization of large-area thin films, which can have a significant potential in the modern semiconductor industry. In the current chapter, the growth of TMDCs by PLD for applications in photodetection has been discussed, with a detailed analysis on the recent advancements in this area. The chapter will be concluded by providing an outlook and perspective on the strategies to overcome the shortcomings associated with the current devices.
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