DocumentCode :
834767
Title :
A study for an improved design of front-end circuit of Superconducting analog-to-digital converter
Author :
Furuta, Futoshi ; Saitoh, Kazuo
Author_Institution :
Adv. Res. Lab., Hitachi Ltd., Kokubunji, Japan
Volume :
15
Issue :
2
fYear :
2005
fDate :
6/1/2005 12:00:00 AM
Firstpage :
445
Lastpage :
448
Abstract :
We have proposed an improved design of the front-end circuit for superconducting analog-to-digital (A/D) converters. The assumed structure of the A/D converter consists of a front-end circuit based on single flux quantum circuitry and a back-end circuit based on semiconductor circuits. To complete the A/D converter, it is necessary to enable synchronous operation between the front-end circuit and assumed back-end circuit. In the present framework, the front-end circuit consists of a ladder-type pulse generator, a modulator, a hybrid DEMUX, shift-registers and stack-type amplifiers. The voltage level of the output data signal is enlarged to about 10 mV by using stack-type amplifiers. Furthermore, the timing margin for synchronization is improved by using a hybrid demultiplexing method. We also have designed a front-end circuit based on the present framework and verified its functionalities at low speed. It was experimentally confirmed that the timing margin in a 1-to-4 hybrid DEMUX was enlarged to three times as large as in the conventional binary-tree DEMUX. A high-voltage output signal of 11 mV was also obtained. From these results, we conclude that functionalities of the designed front-end circuit are correct.
Keywords :
analogue-digital conversion; demultiplexing; hybrid integrated circuits; integrated circuit design; modulators; pulse generators; shift registers; superconducting integrated circuits; synchronisation; timing circuits; 11 mV; back-end circuit; conventional binary-tree DEMUX; demultiplexer; designed front-end circuit functionality; front-end circuit design; high-voltage output signal; hybrid demultiplexing method; l-to-4 hybrid DEMUX; ladder-type pulse generator; modulator; output data signal; semiconductor circuits; shift-registers; single flux quantum circuitry; stack-type amplifiers; superconducting analog-to-digital converter; synchronization; timing margin; voltage level; Analog-digital conversion; Bandwidth; Circuit testing; Frequency synchronization; Pulse amplifiers; SQUIDs; Sampling methods; Signal processing; Timing; Voltage; Analog-to-digital converter; demultiplexer; front-end circuit; single flux quantum;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2005.849870
Filename :
1439670
Link To Document :
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