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Spatial and Frequency Selective Plasmonic Metasurface for Long Wavelength Infrared Spectral Region

  • Xiaohang Pan
  • , Hao Xu
  • , Yanqing Gao
  • , Yafeng Zhang
  • , Liaoxin Sun
  • , Dan Li
  • , Zhengji Wen
  • , Shimin Li
  • , Weiwei Yu
  • , Zhiming Huang
  • , Jianlu Wang
  • , Bo Zhang
  • , Yan Sun
  • , Jinglan Sun
  • , Xiangjian Meng
  • , Xin Chen
  • , Béatrice Dagens
  • , Jiaming Hao*
  • , Yue Shen
  • , Ning Dai
  • Junhao Chu
*此作品的通讯作者
  • Shanghai University
  • CAS - Shanghai Institute of Technical Physics
  • CNRS

科研成果: 期刊稿件文章同行评审

摘要

The development of novel approaches that control absorption and emission operating in the long wavelength infrared (LWIR) spectral region is of fundamental importance for many applications, such as remote temperature sensing, thermal imaging, radiation cooling, environmental monitoring, and night vision. A high performance plasmonic metasurface–based absorber for the LWIR spectral region is presented. In the design, a pyroelectric thin film, poly(vinylidene fluoride-trifluoroethylene) (P(VDF-TrFE)) copolymer, is introduced as spacer, that offers the device not only multiple selective high absorption bands but also promising potential for application in optoelectronics. The angle-resolved optical responses show that the absorption effect is sensitive to the incident angles and can be controlled by the periodicity, indicating that the design can function as optical devices with directional and frequency-selective absorption/emission characteristics. By employing near-field optical microscopy, both the near-field amplitude and phase optical responses of the absorber are investigated at resonant wavelength, thereby providing direct experimental evidence to verify the nature of the absorption effect. To further demonstrate the versatility of the design, a particular metasurface patterned by the building blocks of the absorber is fabricated. 2D hyperspectral images show that such a patterned structure exhibits both frequency and spatially selective absorption.

源语言英语
文章编号1800337
期刊Advanced Optical Materials
6
20
DOI
出版状态已出版 - 18 10月 2018
已对外发布

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