Nonequilibrium thermodynamics of erasure with superconducting flux logic

O-P. Saira, M. H. Matheny, R. Katti, W. Fon, M. L. Roukes
Condensed Matter Physics and Kavli Nanoscience Institute
California Institute of Technology, Pasadena, CA 91125

S. Han
Department of Physics
Department of Physics and Astronomy
University of Kansas, Lawrence, KS 66045

G. Wimsatt and J. P. Crutchfield
Complexity Sciences Center
Physics Department
University of California at Davis
Davis, CA 95616

ABSTRACT: We implement a thermal-fluctuation driven logical bit reset on a superconducting flux logic cell. We show that the logical state of the system can be continuously monitored with only a small perturbation to the thermally activated dynamics at 500 mK. We use the trajectory information to derive a single-shot estimate of the work performed on the system per logical cycle. We acquire a sample of 105 erasure trajectories per protocol, and show that the work histograms agree with both microscopic theory and global fluctuation theorems. The results demonstrate how to design and diagnose complex, high-speed, and thermodynamically efficient computing using superconducting technology.


O-P. Saira, M. H. Matheny, R. Katti, W. Fon, G. Wimsatt, S. Han, J. P. Crutchfield, and M. L. Roukes, “Nonequilibrium thermodynamics of erasure with superconducting flux logic” Physical Review Research 2 (2020) 013249.
doi:10.1103/PhysRevResearch.2.013249.
[pdf]
arXiv.org:1909.13828.