Hui Yu, Gomez-Diaz Juan Sebastian, Qian Zhenyun, Alù Andrea, Rinaldi Matteo
Department of Electrical &Computer Engineering at Northeastern University, 360 Huntington Avenue, Boston, Massachusetts 02115, USA.
Department of Electrical &Computer Engineering at The University of Texas at Austin, 1616 Guadalupe St., UTA 7.215, Austin, Texas 78701, USA.
Nat Commun. 2016 Apr 15;7:11249. doi: 10.1038/ncomms11249.
Ultrathin plasmonic metasurfaces have proven their ability to control and manipulate light at unprecedented levels, leading to exciting optical functionalities and applications. Although to date metasurfaces have mainly been investigated from an electromagnetic perspective, their ultrathin nature may also provide novel and useful mechanical properties. Here we propose a thin piezoelectric plasmonic metasurface forming the resonant body of a nanomechanical resonator with simultaneously tailored optical and electromechanical properties. We experimentally demonstrate that it is possible to achieve high thermomechanical coupling between electromagnetic and mechanical resonances in a single ultrathin piezoelectric nanoplate. The combination of nanoplasmonic and piezoelectric resonances allows the proposed device to selectively detect long-wavelength infrared radiation with unprecedented electromechanical performance and thermal capabilities. These attributes lead to the demonstration of a fast, high-resolution, uncooled infrared detector with ∼80% absorption for an optimized spectral bandwidth centered around 8.8 μm.
超薄等离子体超表面已证明其能够以前所未有的程度控制和操纵光,从而带来令人兴奋的光学功能和应用。尽管迄今为止超表面主要是从电磁角度进行研究的,但其超薄特性也可能提供新颖且有用的机械性能。在此,我们提出一种薄压电等离子体超表面,它构成了具有同时定制的光学和机电特性的纳米机械谐振器的谐振体。我们通过实验证明,在单个超薄压电纳米板中实现电磁谐振和机械谐振之间的高热机械耦合是可能的。纳米等离子体谐振和压电谐振的结合使所提出的器件能够以前所未有的机电性能和热能力选择性地检测长波长红外辐射。这些特性促成了一种快速、高分辨率、无需冷却的红外探测器的展示,对于以8.8微米为中心的优化光谱带宽,其吸收率约为80%。