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基于相变材料的纳米腔作为一种高效光调制器。

Phase change material-based nano-cavity as an efficient optical modulator.

作者信息

Chamoli Sandeep Kumar, Verma Gopal, Singh Subhash C, Guo Chunlei

机构信息

The Guo China-US Photonics Laboratory, State Key Laboratory of Applied Optics, Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, People's Republic of China.

University of Chinese Academy of Science, Beijing 100039, People's Republic of China.

出版信息

Nanotechnology. 2021 Feb 26;32(9):095207. doi: 10.1088/1361-6528/abcb7a.

Abstract

Structural phase transition induced by temperature or voltage in phase change materials has been used for many tunable photonic applications. Exploiting reversible and sub-ns fast switching in antimony trisulfide (SbS) from amorphous (Amp) to crystalline (Cry), we introduced a reflection modulator based on metal-dielectric-metal structure. The proposed design exhibits tunable, perfect, and multi-band absorption from visible to the near-infrared region. The reflection response of the system shows >99% absorption of light at normal incidence. The maximum achievable modulation efficiency with a narrow line width is ∼98%. Interestingly, the designed cavity supports critical resonance in an ultrathin (∼λ/15) SbS film with perfect, broadband, and tunable absorption. Finally, we proposed a novel hybrid cavity design formed of Cry and Amp SbS thin films side-by-side to realize an optical modulator via relative motion between the incident light beam and cavity. The proposed lithographic free structure can be also used for filtering, optical switching, ultrathin photo-detection, solar energy harvesting, and other energy applications.

摘要

相变材料中由温度或电压引起的结构相变已被用于许多可调谐光子应用。利用三硫化锑(SbS)从非晶态(Amp)到晶态(Cry)的可逆且亚纳秒级快速切换,我们引入了一种基于金属 - 电介质 - 金属结构的反射调制器。所提出的设计在可见光到近红外区域表现出可调谐、完美且多波段的吸收。系统的反射响应在正入射时显示出>99%的光吸收。具有窄线宽的最大可实现调制效率约为98%。有趣的是,所设计的腔在超薄(约λ/15)的SbS薄膜中支持临界共振,具有完美、宽带且可调谐的吸收。最后,我们提出了一种由Cry和Amp SbS薄膜并排形成的新型混合腔设计,通过入射光束与腔之间的相对运动来实现光调制器。所提出的无光刻结构还可用于滤波、光开关、超薄光电探测、太阳能收集及其他能源应用。

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