DocumentCode
3300
Title
Characterization of Optical Fast Transition-Edge Sensors With Optimized Fiber Coupling
Author
Lolli, L. ; Taralli, E. ; Rajteri, M. ; Numata, T. ; Fukuda, D.
Author_Institution
Ist. Naz. di Ricerca Metrol. (INRiM), Turin, Italy
Volume
23
Issue
3
fYear
2013
fDate
Jun-13
Firstpage
2100904
Lastpage
2100904
Abstract
Energy resolution (ΔE), recovery time (τeff), and quantum efficiency (QE) are some of the most important single photon-counting detector parameters. New applications in the quantum optics field place extreme demand on detector performances that go beyond the capabilities of established single-photon detectors. Unfortunately, it is hard to reach best results for all these parameters at the same time. Concerning transition-edge sensors (TESs) as single photon detectors, ΔE and τeff are directly and inversely proportional to the transition temperature Tc, respectively. Moreover, the geometrical optical coupling between illuminating fiber and detector, the device material and the characteristics of the optical cavity or the antireflection coating, drastically influence the QE and in some cases also the ΔE. Previous TESs fabricated by Istituto Nazionale di Ricerca Metrologica were characterized by very high energy resolution (0.18 eV) but high τeff and low QE. In this work, we present a Ti/Au TES with higher Tc (300 mK) that, using the optical alignment system implemented by AIST, shows an optimization of these important parameters, energy resolution of 0.26 eV, recovery time of 186 ns, and a quantum efficiency of 50% without using any optical structure deposited on the detector.
Keywords
antireflection coatings; fibre optic sensors; gold; photodetectors; photon counting; titanium; TES; Ti-Au; antireflection coating; device material; energy resolution; geometrical optical coupling; optical alignment; optical cavity; optical fast transition-edge sensors; optimized fiber coupling; photon-counting detector parameters; quantum efficiency; quantum optics field; single photon detectors; transition temperature; Detectors; Energy resolution; Optical fiber sensors; Optical fibers; Photonics; High speed detectors; quantum efficiency; single photon detection;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2013.2238981
Filename
6407829
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