A Superconducting Binary Encoder with Multigate Nanowire Cryotrons.

Zheng, Kai; Zhao, Qing-Yuan; Lu, Hai-Yang-Bo; Kong, Ling-Dong; Chen, Shi; Hao, Hao; Wang, Hui; Pan, Dan-Feng et al. · Nano Lett · 2020

basic_science · Level V

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Abstract

Many classic and quantum devices need to operate at cryogenic temperatures, demanding advanced cryogenic digital electronics for processing the input and output signals on a chip to extend their scalability and performance. Here, we report a superconducting binary encoder with ultralow power dissipation and ultracompact size. We introduce a multigate superconducting nanowire cryotron (nTron) that functions as an 8-input OR gate within a footprint of approximately 0.5 μm<sup>2</sup>. Four cryotrons compose a 4-bit encoder that has a bias margin of 18.9%, an operation speed greater than 250 MHz, an average switching jitter of 75 ps, and a power dissipation of less than 1 μW. We apply this encoder to read out a superconducting-nanowire single-photon detector array whose pixel location is digitized into a 4-bit binary address. The small size of the nanowire combined with the low power dissipation makes nTrons promising for future monolithic integration.