DocumentCode
1237068
Title
Automatic Josephson-transmission-line routing for single-flux-quantum cell-based logic circuits
Author
Kameda, Yoshio ; Yorozu, Shinichi
Author_Institution
Fundamental Res. Labs., NEC Corp., Ibaraki, Japan
Volume
13
Issue
2
fYear
2003
fDate
6/1/2003 12:00:00 AM
Firstpage
519
Lastpage
522
Abstract
In single-flux-quantum (SFQ) circuits, the delay produced by the Josephson transmission line (JTL) is comparable with or larger than the one produced by the logic cells. Therefore, it is difficult to find the routes that satisfy the timing constraints in a large circuit manually. To overcome this obstacle, we propose a two-step automatic JTL routing technology that performs coarse and fine timing adjustments. First, an automatic router draws dummy wires within coarse timing constraints, and then the dummy wires are replaced with JTL cells. Fine timing adjustments are done in the latter step. Some JTL cells in clock and data paths are replaced with faster JTL cells so that clock signals always arrive earlier than data signals at clocked-gates. Two example circuits were designed using the automatic JTL routing technology. One is composed of nearly 600 Josephson junctions. It was experimentally tested up to 35 GHz with on-chip test components. The other is composed of about 4000 Josephson junctions. After the fine timing adjustment, logic simulation showed that it can operate at 20 GHz. We also experimentally confirmed its correct operations at low speed.
Keywords
cellular arrays; delays; logic simulation; network routing; superconducting logic circuits; timing; 20 GHz; 35 GHz; automatic Josephson-transmission-line routing; clocked-gates; coarse timing adjustments; delay; fine timing adjustments; logic simulation; single-flux-quantum cell-based logic circuits; timing constraints; two-step automatic routing; Circuit simulation; Circuit testing; Clocks; Delay; Distributed parameter circuits; Josephson junctions; Logic circuits; Routing; Timing; Wires;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2003.813922
Filename
1211654
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