arXiv · 2409.19137
Quantum Enhanced Josephson Junction Field-Effect Transistors for Logic Applications
Abstract
Josephson junction field-effect transistors (JJFETs) have recently re-emerged as promising candidates for superconducting computing. For JJFETs to perform Boolean logic operations, the so-called gain factor $\alpha_{R}$ must be larger than 1. In a conventional JJFET made with a classical channel material, due to a gradual dependence of superconducting critical current on the gate bias, $\alpha_{R}$ is much smaller than 1. In this Letter, we propose a new device structure of quantum enhanced JJFETs in a zero-energy-gap InAs/GaSb heterostructure. We demonstrate that, due to an excitonic insulator quantum phase transition in this zero-gap heterostructure, the superconducting critical current displays a sharp transition as a function of gate bias, and the deduced gain factor $\alpha_{R}$ ~ 0.06 is more than 50 times that (~ 0.001) reported in a classical JJFET. Further optimization may allow achieving a gain factor larger than 1 for logic applications.
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W. Pan, A. J. Muhowski, W. M. Martinez, C. L. H. Sovinec, J. P. Mendez, D. Mamaluy, W. Yu, X. Shi, K. Sapkota, S. D. Hawkins, J. F. Klem. 2024-09-27. Quantum Enhanced Josephson Junction Field-Effect Transistors for Logic Applications. https://doi.org/10.1016/j.mseb.2024.117729
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