English

A Nanocryotron Memory and Logic Family

Applied Physics 2023-04-19 v1

Abstract

The development of superconducting electronics based on nanocryotrons has been limited so far to few-device circuits, in part due to the lack of standard and robust logic cells. Here, we introduce and experimentally demonstrate designs for a set of nanocryotron-based building blocks that can be configured and combined to implement memory and logic functions. The devices were fabricated by patterning a single superconducting layer of niobium nitride and measured in liquid helium on a wide range of operating points. The tests show 10410^{-4} bit error rates with above 20%20\,\% margins up to 5050\,MHz and the possibility of operating under the effect of a perpendicular 3636\,mT magnetic field, with 30%30\,\% margins at 1010\,MHz. Additionally, we designed and measured an equivalent delay flip-flop made of two memory cells to show the possibility of combining multiple building blocks to make larger circuits. These blocks may constitute a solid foundation for the development of nanocryotron logic circuits and finite-state machines with potential applications in the integrated processing and control of superconducting nanowire single-photon detectors.

Keywords

Cite

@article{arxiv.2212.07953,
  title  = {A Nanocryotron Memory and Logic Family},
  author = {Alessandro Buzzi and Matteo Castellani and Reed A. Foster and Owen Medeiros and Marco Colangelo and Karl K. Berggren},
  journal= {arXiv preprint arXiv:2212.07953},
  year   = {2023}
}

Comments

Submitted for publication in the Applied Physics Letters special issue "Advances in Superconducting Logic", 8 pages, 5 figures

R2 v1 2026-06-28T07:37:00.987Z