Molecularization of Metasurfaces for Multifunctional Ultrafast All‐Optical Terahertz Waves

IF 1.9 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Physica Status Solidi A-applications and Materials Science Pub Date : 2024-07-18 DOI:10.1002/pssa.202400459
Qiangguo Zhou, Qinxi Qiu, Yongzhen Li, Tuntan Wu, Wangchen Mao, Yanqing Gao, Yingjian Ren, Wei Zhou, Lin Jiang, Niangjuan Yao, Jingguo Huang, Zhiming Huang
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Abstract

Hybrid metasurfaces incorporated by active materials hold great promise for state‐of‐the‐art terahertz functional devices. However, it is still a major challenge to achieve ultrafast, dynamic, and multifunctional effective control of THz waves via hybrid metasurfaces. Herein, a modulator consisting of split rings and cut‐wires is first demonstrated, with an amplitude of −35.6 dB at 0.524 THz. By embedding semiconductor silicon into specified locations to form a hybrid metasurface, the ultrastrong connectivity of the silicon bridges leads to rapid optical molecularization. Under photoexcitation, the frequency tuning range is 26.7%, the phase shifting reaches 357.5°, and the maximal modulation depth is 94.54%. Taking advantage of the rapid relaxation of photocarriers in the silicon bridges, the ultrafast frequency switching is within 1400 ps. More interestingly, by changing the positions of the silicon bridges, the frequency tuning range is further promoted to 60%, the phase shifting is 353.5°, the modulation depth of 100% is achieved, and the full recovery time is 1600 ps. Furthermore, the underlying mechanism of the ultrafast tuning process is elucidated. This work demonstrates the feasibility of all‐optical‐controlled hybrid metasurface to achieve multifunctional dynamic modulation of THz waves, which has tremendous potential for applications in optical switching, signal processing, and frequency conversion.
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用于多功能超快全光学太赫兹波的元表面分子化技术
由活性材料构成的混合超表面为最先进的太赫兹功能器件带来了巨大前景。然而,通过混合元表面实现对太赫兹波的超快、动态和多功能有效控制仍是一项重大挑战。本文首次展示了一种由分裂环和切割线组成的调制器,其在 0.524 太赫兹时的振幅为 -35.6 dB。通过在指定位置嵌入半导体硅以形成混合元表面,硅桥的超强连接性导致了快速的光学分子化。在光激发下,频率调谐范围为 26.7%,相移达到 357.5°,最大调制深度为 94.54%。利用硅桥中光电载流子的快速弛豫,可在 1400 ps 内实现超快频率切换。更有趣的是,通过改变硅桥的位置,频率调谐范围进一步扩大到 60%,相移达到 353.5°,调制深度达到 100%,完全恢复时间为 1600 ps。此外,还阐明了超快调谐过程的内在机理。这项工作证明了全光控混合元表面实现太赫兹波多功能动态调制的可行性,在光开关、信号处理和频率转换等领域具有巨大的应用潜力。
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来源期刊
CiteScore
3.70
自引率
5.00%
发文量
393
审稿时长
2 months
期刊介绍: The physica status solidi (pss) journal group is devoted to the thorough peer review and the rapid publication of new and important results in all fields of solid state and materials physics, from basic science to applications and devices. Among the largest and most established international publications, the pss journals publish reviews, letters and original articles, as regular content as well as in special issues and topical sections.
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