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Graphene-Based Light Sensing: Fabrication Characterisation Physical Properties and Performance

机译:基于石墨烯的光感测:制造表征物理性质和性能

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摘要

Graphene and graphene-based materials exhibit exceptional optical and electrical properties with great promise for novel applications in light detection. However, several challenges prevent the full exploitation of these properties in commercial devices. Such challenges include the limited linear dynamic range (LDR) of graphene-based photodetectors, the lack of efficient generation and extraction of photoexcited charges, the smearing of photoactive junctions due to hot-carriers effects, large-scale fabrication and ultimately the environmental stability of the constituent materials. In order to overcome the aforementioned limits, different approaches to tune the properties of graphene have been explored. A new class of graphene-based devices has emerged where chemical functionalisation, hybridisation with light-sensitising materials and the formation of heterostructures with other 2D materials have led to improved performance, stability or versatility. For example, intercalation of graphene with FeCl3 is highly stable in ambient conditions and can be used to define photo-active junctions characterized by an unprecedented LDR while graphene oxide (GO) is a very scalable and versatile material which supports the photodetection from UV to THz frequencies. Nanoparticles and quantum dots have been used to enhance the absorption of pristine graphene and to enable high gain thanks to the photogating effect. In the same way, hybrid detectors made from stacked sequences of graphene and layered transition-metal dichalcogenides enabled a class of devices with high gain and responsivity. In this work, we will review the performance and advances in functionalised graphene and hybrid photodetectors, with particular focus on the physical mechanisms governing the photoresponse, the performance and possible future paths of investigation.
机译:石墨烯和基于石墨烯的材料具有出色的光学和电学性能,有望在光检测领域获得新的应用。然而,一些挑战阻止了在商业设备中充分利用这些特性。此类挑战包括基于石墨烯的光电探测器的线性动态范围(LDR)受限,光激发电荷的有效生成和提取不足,由于热载流子效应而导致的光敏结污点,大规模制造以及最终的环境稳定性。构成材料。为了克服上述限制,已经探索了调节石墨烯的性质的不同方法。出现了一类新的基于石墨烯的器件,其中化学功能化,与光敏材料的杂化以及与其他2D材料的异质结构的形成改善了性能,稳定性或多功能性。例如,石墨烯与FeCl3的插入在环境条件下非常稳定,可用于定义以前所未有的LDR为特征的光敏结,而氧化石墨烯(GO)是一种可扩展性强的通用材料,支持从UV到THz的光检测。频率。纳米粒子和量子点已被用于增强原始石墨烯的吸收并由于光闸效应而实现高增益。同样,由石墨烯和层状过渡金属二卤化物的堆叠序列制成的混合检测器使一类设备具有高增益和高响应度。在这项工作中,我们将回顾功能化石墨烯和混合光电探测器的性能和进展,特别关注控制光响应的物理机制,性能以及未来可能的研究途径。

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