Open AccessEngineeringPhysics

Sergey K. Tolpygo

2016.2.10LOW TEMPERATURE PHYSICS

DOI: 10.1063/1.4948618

tlooto Summary

Superconductor digital electronics faces scalability and energy efficiency issues, raising questions about its viability as a high-performance computing alternative to CMOS processors.

Abstract

Superconductor digital electronics using Josephson junctions as ultrafast switches and magnetic-flux encoding of information was proposed over 30 years ago as a sub-terahertz clock frequency alternative to semiconductor electronics based on complementary metal-oxide-semiconductor (CMOS) transistors. Recently, interest in developing superconductor electronics has been renewed due to a search for energy saving solutions in applications related to high-performance computing. The current state of superconductor electronics and fabrication processes are reviewed in order to evaluate whether this electronics is scalable to a very large scale integration (VLSI) required to achieve computation complexities comparable to CMOS processors. A fully planarized process at MIT Lincoln Laboratory, perhaps the most advanced process developed so far for superconductor electronics, is used as an example. The process has nine superconducting layers: eight Nb wiring layers with the minimum feature size of 350 nm, and a thin s...

Citation format

TOLPYGO, Sergey K. Superconductor digital electronics: Scalability and energy efficiency issues [preprint]. arXiv, 2016. arXiv:1602.03546.