DocumentCode :
1483506
Title :
Reduced Power Consumption in Superconducting Electronics
Author :
Ortlepp, Thomas ; Wetzstein, Olaf ; Engert, Sonja ; Kunert, Juergen ; Toepfer, Hannes
Author_Institution :
RSFQ Design Group, Ilmenau Univ. of Technol., Ilmenau, Germany
Volume :
21
Issue :
3
fYear :
2011
fDate :
6/1/2011 12:00:00 AM
Firstpage :
770
Lastpage :
775
Abstract :
Rapid single flux quantum (RSFQ) electronics is based on the Josephson junction as an active switching element. In standard RSFQ circuits its switching energy is much lower than the static power consumption caused by the resistive current distribution network. Due to this thermal heating of the chip, the maximum number of junctions on a single chip is limited to about 1 million. The frequency-dependent contribution to power dissipation from junction switchings is only about 2 percent of the static one. This fact limits the direct construction of VLSI systems for high-performance computing as well as small-scale circuit applications in the vicinity of ultra-sensitive detectors or even quantum circuits. We present an assessment of different approaches for reducing the static power consumption by investigating the potential of inductive bias distribution networks as well as reduced critical currents. We analyse the operation stability of simple digital circuits with 5 times smaller critical currents at 4.2 K. The combination of the reduced critical currents and inductive biasing can provide digital superconductive circuits with significantly reduced static power consumption.
Keywords :
Josephson effect; VLSI; critical current density (superconductivity); quantum optics; superconducting integrated circuits; Josephson junction; RSFQ electronics; VLSI systems; active switching element; digital circuits; digital superconductive circuits; frequency-dependent contribution; high-performance computing; inductive bias distribution networks; junction switchings; operation stability; power dissipation; quantum circuits; rapid single flux quantum electronics; reduced critical currents; reduced power consumption; resistive current distribution network; small-scale circuit applications; standard RSFQ circuits; static power consumption; superconducting electronics; switching energy; thermal heating; ultra-sensitive detectors; Clocks; Critical current; Inductance; Josephson junctions; Junctions; Power demand; Switches; Josephson junction; RSFQ; magnetic field sensors; superconducting electronics;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2011.2117410
Filename :
5740379
Link To Document :
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