DocumentCode
1009140
Title
High speed non-latching SQUID binary ripple counter
Author
Silver, A.H. ; Phillips, R.R. ; Sandell, R.D.
Author_Institution
TRW Space and Technology, One Space Park, Redondo Beach, CA
Volume
21
Issue
2
fYear
1985
fDate
3/1/1985 12:00:00 AM
Firstpage
204
Lastpage
207
Abstract
High speed, single flux quantum (SFQ) binary scalers are important components in superconducting analog-to-digital converters (ADC). This paper reviews the concept for a SQUID ADC and the design of an SFQ binary ripple counter, and reports the simulation of key components, and fabrication and performance of non-latching SQUID scalers and SFQ binary ripple counters. The SQUIDs were fabricated with Nb/Nb2 O5 /PbIn junctions and interconnected by monolithic-superconducting transmission lines and isolation resistors. Each SQUID functioned as a bistable flip-flop with the input connected to the center of the device and the output across one junction. All junctions were critically damped to optimize the pulse response. Operation was verified by observing the do I-V curves of successive SQUIDs driven by a cw pulse train generated on the same chip. Each SQUID exhibited constant-voltage current steps at 1/2 the voltage of the preceding device as expected from the Josephson voltage-to-frequency relation. Steps were observed only for the same voltage polarity of successive devices and for proper phase bias of the SQUID. Binary frequency division was recorded up to 40GHz for devices designed to operate to 28GHz.
Keywords
A/D converters; ADC; Analog-to-digital conversion (ADC); Counting circuits; Josephson device logic; Analog-digital conversion; Counting circuits; Fabrication; Flip-flops; Niobium; Pulse generation; Resistors; SQUIDs; Superconducting transmission lines; Voltage;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.1985.1063723
Filename
1063723
Link To Document