Kai Zheng
Nanjing University
4 Papers
Kai Zheng is an academic researcher from Nanjing University. The author has contributed to research in topics: Signal & Superconducting nanowire single-photon detector. The author has an hindex of 2, co-authored 4 publications.
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Papers
A Superconducting Binary Encoder with Multigate Nanowire Cryotrons.
Kai Zheng,Qing-Yuan Zhao,Hai-Yang-Bo Lu,Ling-Dong Kong,Shi Chen,Hao Hao,Hui Wang,Danfeng Pan,Xuecou Tu,Labao Zhang,Xiaoqing Jia,Jian Chen,Lin Kang,Peiheng Wu +13 more
TL;DR: A superconducting binary encoder with ultralow power dissipation and ultracompact size is reported, applied to read out asuperconducting-nanowire single-photon detector array whose pixel location is digitized into a 4-bit binary address, promising for future monolithic integration.
23
Noise-tolerant single-photon imaging with a superconducting nanowire camera.
Ling-Dong Kong,Qing-Yuan Zhao,Kai Zheng,Hai-Yang-Bo Lu,Shi Chen,Xu Tao,Hui Wang,Hao Hao,Chao Wan,Xuecou Tu,Labao Zhang,Xiaoqing Jia,Lin Kang,Jian Chen,Peiheng Wu +14 more
TL;DR: A superconducting single-photon infrared camera of negligible dark counts and 60 ps timing resolution is built and the proposed methods can increase the working distance of a long-haul imaging system or defend it from blinding attacks.
12
Patent
Low-temperature reading method of multi-channel superconducting nanowire single-photon detector
Kai Zheng,Zhao Qingyuan,Kang Lin +2 more
- 17 May 2019
TL;DR: In this article, a low-temperature reading method of a multi-channel superconducting nanowire single-photon detector or detector array was proposed, in which the output signal was transmitted to a room temperature environment from a lowtemperature working area through the coaxial line.
Characterize the switching performance of a superconducting nanowire cryotron for reading superconducting nanowire single photon detectors
Kai Zheng,Qing-Yuan Zhao,Ling-Dong Kong,Shi Chen,Hai-Yang-Bo Lu,Xuecou Tu,Labao Zhang,Xiaoqing Jia,Jian Chen,Lin Kang,Peiheng Wu +10 more
TL;DR: The grey zone, speed, timing jitter and power dissipation of a proper designed nTron are characterized, suggesting a digital circuit made from nTrons could be another promising alternative for reading SNSPD or other detector arrays that demands less operation speed.