DocumentCode :
834253
Title :
Stacked double-flux-quantum output amplifier
Author :
Herr, Quentin P.
Author_Institution :
Northrop Grumman, Redondo Beach, CA, USA
Volume :
15
Issue :
2
fYear :
2005
fDate :
6/1/2005 12:00:00 AM
Firstpage :
259
Lastpage :
262
Abstract :
A suitable data link from RSFQ to semiconductor electronics remains challenging. We report an output amplifier that uses a new pulse multiplier circuit. The pulse multiplier consists of several stages arranged in series; a double-flux-quantum gate at each stage promotes the SFQ pulse to the next stage. Characteristics of the circuit design are: 1) DC power. As with the DFQ gate, every unshunted Josephson junction in the amplifier is loaded by critically-damped junctions that prevent voltage-state modes. 2) Equal rise and fall times that scale with output amplitude. In our case, 50 ps rise and fall time and 1-2 mV output amplitude can be realized, which is ideal for a data rate of 10 Gb/s. 3) Quantum accurate voltage multiplication independent of bias current. 4) Non-return-to-zero (NRZ) operation. The circuit was designed and successfully tested in our 8 kA/cm 2 foundry process. A 60 GHz pulse train, generated on-chip, was gated with RSFQ logic to produce a data pattern that was then fed into a pulse multiplier of either ten or twenty stages. Voltage multiplication was observed with operating margins of ±21% on bias current. Fast rise time was directly observed; unfortunately, fall time was spoiled by ringing on a 1 ns time scale. It is plausible that small changes to the physical layout of the circuit would produce desired operation.
Keywords :
logic design; millimetre wave amplifiers; millimetre wave integrated circuits; multiplying circuits; quantum gates; superconducting logic circuits; 1 ns; 1 to 2 mV; 10 Gbit/s; 50 ps; 60 GHz; DC power; Josephson junction; RSFQ logic; SFQ pulse; bias current; critically-damped junctions; data link; double-flux-quantum gate; double-flux-quantum output amplifier; foundry process; non return to zero operation; pulse multiplier circuit; semiconductor electronics; voltage multiplication; Circuit synthesis; Circuit testing; Design for quality; Foundries; Josephson junctions; Optical signal processing; Pulse amplifiers; Pulse circuits; Pulse generation; Voltage;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2005.849784
Filename :
1439625
Link To Document :
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