Bias-Tunable Broadband Infrared Heterostructure Quantum Ratchet Photodetector

Abstract The development of a photon-type very long-wavelength infrared (VLWIR) detector that simultaneously achieves broadband spectral response and elevated operating temperatures remains a formidable challenge. GaAs/AlGaAs quantum ratchet structures have emerged as a promising architecture to circumvent conventional semiconductor bandgap limitations, enabling multispectral detection while effectively suppressing dark current. In this work, metal-organic chemical vapor deposition (MOCVD)-grown GaAs/AlGaAs heterojunction quantum ratchet photodetectors (QRPDs) are demonstrated. Theoretical and experimental studies of the system were conducted to investigate its spectral response and transport properties. The multiperiod quantum ratchet structure exhibits broadband detection covering the near-infrared to very long-wavelength infrared bands. The asymmetric low-dimensional quantum structure also leads to a photovoltaic-like effect with zero bias response and bias-tuned spectral characteristics. A high peak specific detectivity of 2.4 × 1011 cm·Hz1/2 W–1 was achieved at zero bias. Thanks to the suppression of dark current by the ratchet barrier, the BLIP temperature of the QRPD reached 40 K. This work not only demonstrates the significant potential of quantum ratchet devices for broadband high-temperature operation but also verifies the feasibility of MOCVD in the mass production of quantum ratchet devices, offering a promising solution for cost-effective product iteration and broader application scenarios in photon-type infrared detection.

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Publication Details

Journal
ACS Photonics
Published
2026-09-26
DOI
https://doi.org/10.1021/acsphotonics.6c01266
Primary Topic
Semiconductor Quantum Structures and Devices
Type
article
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article

Bias-Tunable Broadband Infrared Heterostructure Quantum Ratchet Photodetector

解研 Xie Yan, 邵棣祥 Shao Dixiang, Peng Bai, Hao Wang et al.
ACS Photonics
Semiconductor Quantum Structures and Devices
article

Bias-Tunable Broadband Infrared Heterostructure Quantum Ratchet Photodetector

解研 Xie Yan, 邵棣祥 Shao Dixiang, Peng Bai, Hao Wang, 万文坚, Zhaona Wang, Meng Chen, 符张龙, Ziran Zhao, Yinqiao Li, Yingxin Wang, Ning Yang, Gang Song, Jiaxuan Cai, Yi Wang, Weidong Chu
article en

Abstract

Abstract The development of a photon-type very long-wavelength infrared (VLWIR) detector that simultaneously achieves broadband spectral response and elevated operating temperatures remains a formidable challenge. GaAs/AlGaAs quantum ratchet structures have emerged as a promising architecture to circumvent conventional semiconductor bandgap limitations, enabling multispectral detection while effectively suppressing dark current. In this work, metal-organic chemical vapor deposition (MOCVD)-grown GaAs/AlGaAs heterojunction quantum ratchet photodetectors (QRPDs) are demonstrated. Theoretical and experimental studies of the system were conducted to investigate its spectral response and transport properties. The multiperiod quantum ratchet structure exhibits broadband detection covering the near-infrared to very long-wavelength infrared bands. The asymmetric low-dimensional quantum structure also leads to a photovoltaic-like effect with zero bias response and bias-tuned spectral characteristics. A high peak specific detectivity of 2.4 × 1011 cm·Hz1/2 W–1 was achieved at zero bias. Thanks to the suppression of dark current by the ratchet barrier, the BLIP temperature of the QRPD reached 40 K. This work not only demonstrates the significant potential of quantum ratchet devices for broadband high-temperature operation but also verifies the feasibility of MOCVD in the mass production of quantum ratchet devices, offering a promising solution for cost-effective product iteration and broader application scenarios in photon-type infrared detection.

ACS Photonics
Institute of Applied Physics (UA), Beijing University of Posts and Telecommunications (CN), Beijing Normal University (CN), China Academy of Engineering Physics (CN), Computational Physics (United States) (US), Institute of Applied Physics and Computational Mathematics (CN), Shanghai Institute of Microsystem and Information Technology (CN), Tsinghua University (CN)
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Openalex Percentile: Top 14%
Semiconductor Quantum Structures and Devices
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