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中国物理学会期刊

基于二维材料的极少电极单元器件微型光谱仪

CSTR: 32037.14.aps.75.20251596

Miniaturized spectrometers with minimal electrode unit devices based on two-dimensional materials

CSTR: 32037.14.aps.75.20251596
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  • 光谱仪是可以同时获得入射光强度和波长等多维度信息的设备, 在实验室和工业界均具有重要的应用价值. 然而, 基于光栅或迈克耳孙干涉仪的传统光谱仪体积庞大, 这限制了光谱仪在便携设备上的集成与应用. 因此, 光谱仪的微型化、片上化对新一代光电子器件的发展至关重要. 二维材料因其具有丰富的能带调控方式的特点, 在实现片上微型光谱仪方面具有巨大潜力. 本综述将介绍基于二维材料的极少电极单元器件微型光谱仪, 剖析其工作原理、技术优势及局限性. 分类介绍基于斯塔克效应、隧穿效应、电致伸缩效应等代表性的极少电极单元器件微型光谱仪的工作原理, 对比其性能与特点. 进一步深入探讨面临的挑战, 如材料制备、器件集成与兼容性、光谱重构算法优化等, 并对未来微型光谱仪的发展做出展望. 本文旨在为微型光谱仪领域的研究提供有益参考, 推动极少电极单元器件微型光谱仪的进一步发展与应用.

     

    Spectrometers are the devices which can acquire multi-dimensional information of incident light including intensity and wavelength. They have broad applications in both laboratory and industrial fields. Nevertheless, spectrometers relying on gratings or Michelson interferometers are inherently bulky, which restricts their integration and deployment in portable devices. Consequently, the miniaturization and on-chip integration of spectrometers are crucial for the advancement of next-generation optoelectronic devices. Two-dimensional (2D) materials, with unique characteristics including atomic-scale thickness, absence of surface dangling bonds, and versatile band structure modulation capabilities, show great potential for fabricating on-chip miniature spectrometers.
    This review focuses on micro-spectrometers with minimal electrodes based on 2D materials, and provides a detailed analysis of their device configurations, working principles, advantages, and existing limitation. Unlike array-based or tunable-filter spectrometers, the devices with few-electrode architectures utilize physical effects such as the Stark effect, quantum tunneling, and electrostriction to encode spectral information into electrical signals, thereby achieving spectral reconstruction and greatly reducing device footprint and complexity. We conduct a systematic categorization and evaluation of representative implementations of these spectrometers. Through a comparison of their key metrics, such as spectral resolution, operational bandwidth, response speed, and reconstruction accuracy, we clarify the underlying physical mechanisms that determine their performance. In addition to conducting a comprehensive survey of cutting-edge devices, we perform a critical assessment of the long-standing challenges within the field. These challenges include the scalable and reproducible material synthesis, the stable integration of devices with silicon photonics and readout circuits, the environmental stability of 2D materials, and the optimization of computational algorithms for reliable spectral retrieval under the conditions of noise or limited data. Finally, we outline future research directions with the aim of improving device performance and putting them into practical applications in on-chip photonic systems. This review is expected to provide useful information for researchers engaged in the research on ultra compact miniaturized spectrometers and to promote innovation in ultra compact spectral sensing technologies.

     

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