Emerging probing perspective of two-dimensional materials physics: terahertz emission spectroscopy.

IF 19.4 1区 物理与天体物理 Q1 Physics and Astronomy Light, science & applications Pub Date : 2024-06-29 DOI:10.1038/s41377-024-01486-2
Yifei Wu, Yuqi Wang, Di Bao, Xiaonan Deng, Simian Zhang, Lin Yu-Chun, Shengxian Ke, Jianing Liu, Yingjie Liu, Zeli Wang, Pingren Ham, Andrew Hanna, Jiaming Pan, Xinyue Hu, Zhengcao Li, Ji Zhou, Chen Wang
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Abstract

Terahertz (THz) emission spectroscopy (TES) has emerged as a highly effective and versatile technique for investigating the photoelectric properties of diverse materials and nonlinear physical processes in the past few decades. Concurrently, research on two-dimensional (2D) materials has experienced substantial growth due to their atomically thin structures, exceptional mechanical and optoelectronic properties, and the potential for applications in flexible electronics, sensing, and nanoelectronics. Specifically, these materials offer advantages such as tunable bandgap, high carrier mobility, wideband optical absorption, and relatively short carrier lifetime. By applying TES to investigate the 2D materials, their interfaces and heterostructures, rich information about the interplay among photons, charges, phonons and spins can be unfolded, which provides fundamental understanding for future applications. Thus it is timely to review the nonlinear processes underlying THz emission in 2D materials including optical rectification, photon-drag, high-order harmonic generation and spin-to-charge conversion, showcasing the rich diversity of the TES employed to unravel the complex nature of these materials. Typical applications based on THz emissions, such as THz lasers, ultrafast imaging and biosensors, are also discussed. Step further, we analyzed the unique advantages of spintronic terahertz emitters and the future technological advancements in the development of new THz generation mechanisms leading to advanced THz sources characterized by wide bandwidth, high power and integration, suitable for industrial and commercial applications. The continuous advancement and integration of TES with the study of 2D materials and heterostructures promise to revolutionize research in different areas, including basic materials physics, novel optoelectronic devices, and chips for post-Moore's era.

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二维材料物理学的新兴探测视角:太赫兹发射光谱学。
太赫兹(THz)发射光谱(TES)在过去几十年中已成为研究各种材料的光电特性和非线性物理过程的一种高效、多用途技术。与此同时,由于二维(2D)材料具有原子级薄结构、优异的机械和光电特性,以及在柔性电子学、传感和纳米电子学中的应用潜力,对二维材料的研究也经历了大幅增长。具体来说,这些材料具有可调带隙、高载流子迁移率、宽带光吸收和相对较短的载流子寿命等优点。通过应用 TES 研究二维材料及其界面和异质结构,可以揭示光子、电荷、声子和自旋之间相互作用的丰富信息,从而为未来应用提供基础性的理解。因此,现在正是回顾二维材料中太赫兹发射的非线性过程(包括光学整流、光子拖曳、高阶谐波产生和自旋到电荷的转换)的好时机。我们还讨论了基于太赫兹发射的典型应用,如太赫兹激光、超快成像和生物传感器。此外,我们还分析了自旋电子太赫兹发射器的独特优势,以及未来在开发新的太赫兹产生机制方面的技术进步,这些机制将产生具有宽带宽、高功率和高集成度等特点的先进太赫兹源,适用于工业和商业应用。太赫兹辐射的不断进步以及与二维材料和异质结构研究的结合,有望彻底改变不同领域的研究,包括基础材料物理、新型光电器件和后摩尔时代的芯片。
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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
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