DocumentCode
862201
Title
Picosecond optoelectronic study of superconducting microstrip transmission lines
Author
Bulzacchelli, J.F. ; Hae-Seung Lee ; Stawiasz, K.G. ; Alexandrou, S. ; Ketchen, M.B.
Author_Institution
Dept. of Electr. Eng. & Comput. Sci., MIT, Cambridge, MA, USA
Volume
5
Issue
2
fYear
1995
fDate
6/1/1995 12:00:00 AM
Firstpage
2839
Lastpage
2843
Abstract
The ballistic transport of picosecond digital signals along terminated microstrip lines is a key feature of single flux quantum (SFQ) logic. In this work, we have used fast photoconductors driven by a femtosecond laser to measure directly for the first time the propagation and termination of picosecond pulses along Nb microstrip lines. Electrical pulses as short as 0.8 ps full-width-at-half-maximum (FWHM) have been measured. After propagating distances of 200 /spl mu/m, 1 mm, and 6.5 mm, the pulses broadened to 1.0, 1.2, and 1.8 ps (FWHM), respectively. In the frequency domain, attenuation is found to be negligible up to the gap frequency of Nb(0.7 THz), beyond which attenuation increases rapidly. We have also measured the reflections of the picosecond pulses off different terminations: open circuit, short circuit, and various resistors. The effective suppression of reflections with matched resistive loads is demonstrated up to frequencies approaching 1 THz.<>
Keywords
Josephson effect; digital signals; logic testing; measurement by laser beam; microstrip lines; niobium; superconducting device testing; superconducting logic circuits; type II superconductors; 0.7 to 1 THz; 0.8 to 1.8 ps; 1 mm; 200 micron; 6.5 mm; Nb; Nb microstrip lines; ballistic transport; fast photoconductors; femtosecond laser; full-width-at-half-maximum; gap frequency; matched resistive loads; open circuit; picosecond digital signals; short circuit; single flux quantum logic; superconducting microstrip transmission lines; Attenuation; Ballistic transport; Frequency; Microstrip; Optical propagation; Optical reflection; Photoconductivity; Pulse measurements; Superconducting logic circuits; Superconducting transmission lines;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/77.403183
Filename
403183
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