4.7 Article

Epitaxial indium antimonide for multiband photodetection from IR to millimeter/terahertz wave

Journal

PHOTONICS RESEARCH
Volume 10, Issue 5, Pages 1194-1201

Publisher

CHINESE LASER PRESS
DOI: 10.1364/PRJ.444354

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Funding

  1. Agency for Science, Technology and Research [SERC 1720700038, SERC A1883c0002]
  2. Ministry of Education-Singapore [2017-T1-002-117]

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This study reports the application of epitaxial indium antimonide on gallium arsenide for multiband photodetection in the infrared and millimeter/terahertz wave ranges. The detectors show strong responses and good performance at room temperature, making them promising for advanced uncooled multiband detection and imaging systems.
Conventional photodetection converts light into electrical signals only in a single electromagnetic waveband. Multiband detection technology is highly desirable because it can handle multispectral information discrimination, identification, and processing. Current epitaxial solid-state multiband detection technologies are mainly within the IR wave range. Here, we report epitaxial indium antimonide on gallium arsenide for IR and millimeter/terahertz wave multiband photodetection. The photoresponse originates from interband transition in optoelectrical semiconductors for IR wave, and surface plasmon polaritons induced nonequilibrium electrons for a millimeter/terahertz wave. The detector shows a strong response for an IR wave with a cutoff wavelength of 6.85 mu m and a blackbody detectivity of 1.8 x 10(9) Jones at room temperature. For a millimeter/terahertz wave, the detector demonstrates broadband detection from 0.032 THz (9.4 mm) to 0.330 THz (0.9 mm); that is, from K-a to the W and G bands, with a noise equivalent power of 1.0 x 10(-13) W Hz(-1/2) at 0.270 THz (1.1 mm) at room temperature. The detection performance is an order of magnitude better while decreasing the temperature to 170 K, the thermoelectric cooling level. Such detectors, capable of large scale and low cost, are promising for advanced uncooled multiband detection and imaging systems. (C) 2022 Chinese Laser Press

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