DocumentCode
1475578
Title
High-speed interchip data transmission technology for superconducting multi-chip modules
Author
Gupta, Deepnarayan ; Li, Wenquan ; Kaplan, Steven B. ; Vernik, Igor V.
Author_Institution
HYPRES, Elmsford, NY, USA
Volume
11
Issue
1
fYear
2001
fDate
3/1/2001 12:00:00 AM
Firstpage
731
Lastpage
734
Abstract
We have developed an interchip data transmission scheme through passive transmission lines on a multi-chip-module (MCM) carrier and 100-μm solder bump bonds. In rapid single flux quantum (RSFQ) logic, digital data are in the form of single flux quantum (SFQ) pulses. A reliable scheme for transmission of SFQ pulses through non-superconducting solder bumps between chips through a passive MCM substrate is yet to be established. Therefore, we have devised a scheme that converts SFQ pulses into toggles in a voltage waveform for interchip transmission. Data in the form of SFQ pulses are reconstructed from this voltage waveform using a sensitive quantizing pulse receiver. Our objective is to eliminate the need for amplification of the transmitted signal. This is achieved by increasing the receiver sensitivity. However, a sensitive receiver, a dc SQUID, may produce more than one SFQ pulse for each rising/falling edge of the voltage waveform. A simple circuit, pulse resurrection logic (PRL), is employed to discard any extra SFQ pulses. Together with the sensitive quantizer, the PRL circuit makes our scheme error tolerant. We have demonstrated the receiver operation using 3-μm Nb RSFQ circuits at frequencies up to 20 GHz
Keywords
SQUIDs; high-speed integrated circuits; multichip modules; superconducting logic circuits; superconducting transmission lines; 20 GHz; 3 micron; DC SQUID; Nb; Nb RSFQ circuit; SFQ pulse; broadband communication; high-speed interchip data transmission; passive transmission line; pulse resurrection logic; quantizing pulse receiver; solder bump bond; superconducting multichip module; voltage waveform toggle; Bandwidth; Data communication; Microstrip; Pulse amplifiers; Pulse circuits; SQUIDs; Superconducting logic circuits; Superconducting transmission lines; Telephony; Voltage;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/77.919449
Filename
919449
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