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Quantum efficiency enhancement using photon-trapping structure on extended SWIR type-II superlattice nBn photodetector

Author(s)
Gwak, DonghoAhn, Seung-yeopLim, JinhaJeong, JaeyongLee, ByoungWookKim, YounghoKim, SangHyeon
Issued Date
2025-03
DOI
10.1364/OE.554906
URI
https://scholarworks.unist.ac.kr/handle/201301/90854
Fulltext
https://opg.optica.org/oe/fulltext.cfm?uri=oe-33-6-13217
Citation
OPTICS EXPRESS, v.33, no.6, pp.13217 - 13227
Abstract
Type-II superlattice (T2SL) material systems are emerging as promising alternatives to conventional materials such as InGaAs and HgCdTe for extended short-wavelength infrared (eSWIR) detection, a field experiencing growing demand due to its diverse applications. However, T2SL photodetectors typically suffer from relatively low quantum efficiency. In this study, we demonstrate a significant enhancement in the quantum efficiency of eSWIR T2SL photodetectors through the implementation of a photon-trapping structure. The photon-trapping structure, consisting of top diffraction gratings and a bottom reflective metal layer incorporated via wafer bonding, effectively increases the optical path length within the active region by redirecting incident light to propagate laterally. Optical measurements demonstrate a 77.2% improvement in average quantum efficiency for the photon-trapping photodetector compared to a conventional reference photodetector over the 1.7 mu m to 2.5 mu m wavelength range. Finite-difference time-domain (FDTD) simulations of electric field distributions and optical resonance analyses reveal that this enhancement is driven by the combined effects of Fabry-Perot resonances and multiple guided-mode resonances, arising from the synergy between the bottom reflective metal and the diffraction grating. (c) 2025 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement
Publisher
Optica Publishing Group
ISSN
1094-4087
Keyword
TEMPERATURE

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