用于低成本、非冷却中红外传感的混合二维/量子点传感器材料的设计。

IF 2.8 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Rakina Islam, Mohammad M Al Mahfuz, Rodrigo Castillo-Garza, Dong-Kyun Ko
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引用次数: 0

摘要

非制冷中波红外(MWIR)图像传感器具有体积小、重量轻、节能等优点,有望在未来红外市场占据主导地位。作为高性能冷冷MWIR成像仪中使用的传统外延生长红外半导体的替代品,混合传感器材料的概念越来越受到关注。具体来说,以其优越的载流子输运特性而闻名的二维(2D)材料与提供优异光学特性的胶体量子点(QDs)相结合的混合结构显示出创纪录的室温红外响应率,光谱响应扩展到短波红外(SWIR)。这种新型混合材料技术最重要的潜力在于尚未开发的MWIR光谱区域。在此,我们讨论了实现MWIR混合2D/QD传感器材料的设计规则,并使用工作在MWIR光谱区域的概念验证器件演示了其室温光学和电性能,无门偏置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of hybrid 2D/quantum dot sensor materials for low-cost, uncooled mid-infrared sensing.

Uncooled mid-wave infrared (MWIR) image sensors, which are compact, lightweight, and energy-efficient, are expected to take a dominant position in the future infrared market. As an alternative to traditional epitaxially-grown infrared semiconductors used in high-performance cryo-cooled MWIR imagers, the concept of hybrid sensor materials is gaining attention. Specifically, hybrid structures combining two-dimensional (2D) materials, known for their superior carrier transport properties, with colloidal quantum dots (QDs), which offer excellent optical properties, have shown record-high room-temperature infrared responsivities with spectral responses extending to short-wave infrared. The most significant potential of this new hybrid material technology lies in the underexplored MWIR spectral region. Herein, we discuss the design rules for realizing a MWIR hybrid 2D/QD sensor material and demonstrate its room temperature optical and electrical performance using proof-of-concept devices operating in the MWIR spectral region without gate biasing.

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来源期刊
Nanotechnology
Nanotechnology 工程技术-材料科学:综合
CiteScore
7.10
自引率
5.70%
发文量
820
审稿时长
2.5 months
期刊介绍: The journal aims to publish papers at the forefront of nanoscale science and technology and especially those of an interdisciplinary nature. Here, nanotechnology is taken to include the ability to individually address, control, and modify structures, materials and devices with nanometre precision, and the synthesis of such structures into systems of micro- and macroscopic dimensions such as MEMS based devices. It encompasses the understanding of the fundamental physics, chemistry, biology and technology of nanometre-scale objects and how such objects can be used in the areas of computation, sensors, nanostructured materials and nano-biotechnology.
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