Design and Performance of Parallel-channel Nanocryotrons in Magnetic Fields

ORAL

Abstract

We introduce a new design modification to conventional geometry of the cryogenic three-terminal switch, the nanocryotron (nTron). The conventional geometry of nTrons is modified by including parallel current-carrying channels, an approach aimed at enhancing the device's performance in magnetic field environments. The common challenge in nTron technology is to maintain efficient operation under varying magnetic field conditions. Here we show that the adaptation of parallel channel configurations leads to an enhanced gate signal sensitivity, an increase in operational gain, and a reduction in the impact of superconducting vortices on nTron operation within magnetic fields up to 1 Tesla. Contrary to traditional designs that are constrained by their effective channel width, the parallel nanowire channels permits larger nTron cross sections, further bolstering the device's magnetic field resilience while improving electro-thermal recovery times due to reduced local inductance. This advancement in nTron design not only augments its functionality in magnetic fields but also broadens its applicability in technological environments, offering a simple design alternative to existing nTron devices.

* This work was supported by the U. S. Department of En-ergy (DOE), Office of Science, Offices of Nuclear Physics (NP),Basic Energy Sciences, Materials Sciences and EngineeringDivision under Contract # DE-AC02-06CH11357. DOE-NPMicroelectronics Initiative under project PRJ1010491. Work con-ducted at the Center for Nanoscale Materials, an Office of Sci-ence user facility, was supported by the U.S. Department ofEnergy, Office of Science, Office of Basic Energy Sciences,under Contract # DE-AC02-06CH11357

Presenters

  • Timothy J Draher

    Northern Illinois University

Authors

  • Timothy J Draher

    Northern Illinois University

  • Tomas Polakovic

    Argonne National Laboratory

  • Yi Li

    Argonne National Laboratory

  • John Pearson

    Argonne National Lab, Argonne National Laboratory

  • Alan M Dibos

    Argonne National Laboratory, Argonne National Lab

  • Zein-Eddine Meziani

    Argonne National Laboratory

  • Zhili Xiao

    Argonne National Laboratory

  • Valentine Novosad

    Argonne National Laboratory