Development of a bias power supply for Geiger mode avalanche photodiodes

GAO B, WU Z H, SHI W X, et al. Ability of strong-pulse illumination to hack self-differencing avalanche photodiode detectors in a high-speed quantum-key-distribution system[J]. Physical review A, 2022, 106(3): 033713.

Article  ADS  Google Scholar 

GHEZZI A, FARINA A, BASSI A, et al. Multispectral compressive fluorescence lifetime imaging microscopy with a SPAD array detector[J]. Optics letters, 2021, 46(6): 1353–1356.

Article  ADS  Google Scholar 

BARTOLO-PEREZ C, CHANDIPARSI S, MAYET A S, et al. Avalanche photodetectors with photon trapping structures for biomedical imaging applications[J]. Optics express, 2021, 29(12): 19024–19033.

Article  ADS  Google Scholar 

ZHOU X, SUN J F, JIANG P, et al. Improvement of detection probability and ranging performance of Gm-APD LiDAR with spatial correlation and adaptive adjustment of the aperture diameter[J]. Optics and lasers in engineering, 2021, 138: 106452.

Article  Google Scholar 

WIPIEJEWSKI T, AKULOVA Y A, FISH G, et al. Integration of active optical components[J]. Proceedings of SPIE - the international society for optical engineering, 2003, 4997: 1–12.

ADS  Google Scholar 

TALAVÁN D, ESPAÑA S. Dynamic light scattering based on low-cost components[J]. Measurement science and technology, 2022, 33(6): 065902.

Article  ADS  Google Scholar 

RAWAT A, AHAMED A, BARTOLO-PEREZ C, et al. Design and fabrication of high-efficiency, low-power, and low-leakage Si-avalanche photodiodes for low-light sensing[J]. ACS photonics, 2023, 10(5): 1416–1423.

Article  Google Scholar 

CHEN Q S, ZHANG M. Technology and application of silicon avalanche photodiode[J]. Electronics & packaging, 2021, 21(3): 030101. (in Chinese)

Google Scholar 

BARTOLONI A, BARONE L M, CAVALLARI F, et al. High voltage system for the CMS electromagnetic calorimeter[J]. Nuclear instruments and methods in physics research section A: accelerators, spectrometers, detectors and associated equipment, 2007, 582(2): 462–468.

Article  ADS  Google Scholar 

WEI Z J, WANG J D. A high precision avalanche photon diode bias power supply[J]. Telecom power technology, 2011, 28(04): 73–74. (in Chinese)

Google Scholar 

YANG Y Y, WANG S W, HSIEH C Y, et al. Power management with a low-ripple high-conversion-ratio 80-V output voltage boost converter for avalanche photodiode system[J]. IEEE transactions on industrial electronics, 2013, 60(7): 2627–2637.

Article  Google Scholar 

XING H C, XU J T, LI X Y, et al. Development of Geiger mode circuit with silicon avalanche photodiode for ultraviolet optical communication[J]. Infrared technology, 2018, 40(10): 966–971. (in Chinese)

Google Scholar 

XIANG Y Y, GUO S G, WU Y, et al. Design of an APD bias voltage module with high precision and low power consumption[J]. Semiconductor optoelectronics, 2021, 42(04): 556–561+567. (in Chinese)

Google Scholar 

YAU Y T, HUNG T L. A flyback converter with novel active dissipative snubber[J]. IEEE access, 2022, 10: 108145–108158.

Article  Google Scholar 

PATRA S, SAHU S K, ABICHANDANI P G, et al. Self-operating flyback converter for boosting ultra-low voltage of thermoelectric power generator for IoT applications[J]. IEEE transactions on industrial electronics, 2022, 69(12): 12957–12966.

Article  Google Scholar 

LIANG T J, CHEN K H, CHEN J F. Primary side control for flyback converter operating in DCM and CCM[J]. IEEE transactions on power electronics, 2018, 33(4): 3604–3612.

Article  ADS  Google Scholar 

LUO H, ZANG T L, CHEN S, et al. An adaptive off-time controlled DCM flyback PFC converter with unity power factor and high efficiency[J]. IEEE access, 2021, 9: 22493–22502.

Article  Google Scholar 

HOWIMANPORN S, BUNLAKSANANUSORN C. Performance comparison of continuous conduction mode (CCM) and discontinuous conduction mode (DCM) flyback converters[C]//The Fifth International Conference on Power Electronics and Drive Systems, November 17–20, 2003, Singapore. New York: IEEE, 2003, 2: 1434–1438.

Google Scholar 

HIMANSH U, KHANNA R. Various control methods for DC-DC buck converter[C]//2012 IEEE Fifth Power India Conference, December 19–22, 2012, Murthal, India. New York: IEEE, 2012: 1–4.

Google Scholar 

YU X Y, CHEN H F, ZOU H, et al. Simulation of a preamplifier for an extremely weak current measure circuit[J]. Nuclear electronics & detection technology, 2014, 34(12): 1514–1517. (in Chinese)

Google Scholar 

SANJAYA M. Switching power supplies A to Z[M]. WANG Z Q, ZHU W, LI Y Y, et al, Transl. 2nd ed. Beijing: Posts & Telecom Press, 2015: 328–351.

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