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Design of wavelength-selective surfaces for mid-infrared detectors using heavily doped silicon complex gratings
Conference paper

Design of wavelength-selective surfaces for mid-infrared detectors using heavily doped silicon complex gratings

Y.-B. Chen and Z.M. Zhang
2008 Proceedings of the ASME Micro/Nanoscale Heat Transfer International Conference, MNHT 2008, Vol.PART B, pp.1211-1218
2008

Abstract

Absorptance Gratings Infrared Surface plasmon polaritons Wavelength-selective Mechanics of Materials Materials Science (all) Condensed Matter Physics Atomic and Molecular Physics and Optics
The feasibility of using complex gratings for mid-infrared wavelength-selective absorbers is investigated. Nano/microscale surface features are employed for tailoring thermal radiative properties, which are much different from those of plain surfaces. High absorptance from heavily doped (> 1×10 <sup>20</sup> cm <sup>-3</sup> ) silicon for the transverse magnetic wave incidence can be achieved with one-dimensional periodic gratings by exciting surface plasmon polaritons. For simple binary gratings, the associated absorptance peak is narrowband and directional sensitive. These drawbacks can be remedied by using complex gratings, whose features are a superposition of multiple simple surface-relief gratings. The spectral absorptance displays a peak whose full-width-at-half-maximum (FWHM) exceeds 1.5 μm and is less sensitive to the angle of incidence. Moreover, the peak wavelength can be adjusted by varying the doping concentration and grating geometry. This study demonstrates that the use of complex gratings may significantly enhance the performance of infrared detectors. Copyright © 2008 by ASME.

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