4.6 Article

Short-Wave Near-Infrared Polarization Sensitive Photodetector Based on GaSb Nanowire

期刊

IEEE ELECTRON DEVICE LETTERS
卷 42, 期 4, 页码 549-552

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/LED.2021.3061705

关键词

Photodetector; III-V semiconductor materials; nanowire; polarization sensitive

资金

  1. National Key Research and Development Program of China [2017YFA0207500]
  2. National Natural Science Foundation of China [62004193, 12004375]
  3. Strategic Priority Research Program of Chinese Academy of Sciences [XDB30000000]
  4. Beijing National Laboratory for Molecular Sciences [BNLMS201908]

向作者/读者索取更多资源

GaSb nanowire-based photodetectors exhibit high polarization sensitivity in short-wave near-infrared photoelectric detection and demonstrate good optical detection ability at 1550 nm, showing great potential for applications.
The near-infrared (NIR) polarized photodetector has wide range of applications including the object identification. Wavelength of 1550 nm is the least loss band for transmission communication, and the study of photodetectors working at 1550 nm demonstrate special scientific and applied significances. GaSb has attracted tremendous attention in the field of photoelectric detection due to its suitbale band gap, high mobility, sensitivity, and good compatibility with modern microelectronics technology. In this work, a highly polarization-sensitive GaSb nanowire based photodetectors under short-wave near-infrared photoelectric detection is achieved. The device has a good optical detection ability in the near-infrared band, and showed the responsivity up to 77.3 A/W with the external quantum efficiency of 6.18 x 10(3)% (illumination intensity of 1.59 mW/mm(2)) under 1550 nm. Furthermore, obvious photocurrent anisotropy are investigated under the near infrared band from 808 nm to 1550 nm. The largest dichroic ratio reaches 3.3 at 1550 nm. These results indicate that GaSb nanowire based photodetectors are not only promising candidates for NIR detection but also have promising potentials in polarization sensitive applications.

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