DocumentCode
1118359
Title
Modeling quasiparticle production and propagation in tunnel junction based X-ray detectors
Author
Wood, Kent S. ; Lovellette, Michael N. ; Van Vechten, Deborah
Author_Institution
US Naval Res. Lab., Washington, DC, USA
Volume
27
Issue
2
fYear
1991
fDate
3/1/1991 12:00:00 AM
Firstpage
2673
Lastpage
2676
Abstract
Optimization of the energy resolution of Josephson tunnel junction X-ray detectors requires the minimization of event-to-event variation in the number of nonequilibrium quasiparticles that tunnel and are thereby detected for monochromatic input. This requires a detailed understanding of the determinants of the time scales for the degradation of the energy and expansion of the disturbed volume, of possible quasiparticle (QP) self-trapping and phonon bottlenecking, and of the impact of materials parameters such as grain size. Moreover, the signals of distributed detectors cannot be interpreted without a detailed model of the evolution of the spatial variation in QP density. These matters, and the extent to which the details of the QP tunneling pulse probes the energy degradation and expansion, are discussed. The expansion is modeled in two dimensions with Monte Carlo simulations of ballistic quasiparticle propagation between randomizing collisions and compared with published data for a distributed junction detector. Alternative explanations of the high quasiparticle loss rate and curvature seen in the published plots of the relative fraction of the QP detected by the two sensing junctions are offered
Keywords
X-ray detection and measurement; superconducting junction devices; Josephson tunnel junction X-ray detectors; Monte Carlo simulations; ballistic quasiparticle propagation; distributed detectors; distributed junction detector; energy resolution; event-to-event variation; grain size; high quasiparticle loss rate; materials parameters; modeling; phonon bottlenecking; quasiparticle production; quasiparticle propagation; quasiparticle self trapping; randomizing collisions; Degradation; Energy resolution; Grain size; Phonons; Production; Quadratic programming; Signal detection; Tunneling; X-ray detection; X-ray detectors;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/20.133762
Filename
133762
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