Superconducting fluctuations and characteristic time scales in amorphous WSi
Xiaofu Zhang, Adriana E. Lita, Mariia Sidorova, Varun B. Verma, Qiang, Wang, Sae Woo Nam, Alexej Semenov, and Andreas Schilling

TL;DR
This study investigates the electron interaction times in amorphous WSi films, revealing their temperature dependence and implications for photon detection efficiency in superconducting nanowire single-photon detectors.
Contribution
The paper provides the first detailed measurement of electron-electron and electron-phonon interaction times in amorphous WSi, linking these to hotspot dynamics and detector performance.
Findings
Electron-phonon interaction times are significantly longer than electron-electron times.
The ratio of interaction times suggests efficient photon energy confinement in electrons.
Superconducting fluctuation effects are crucial near Tc for accurate modeling.
Abstract
We study magnitudes and temperature dependences of the electron-electron and electron-phonon interaction times which play the dominant role in the formation and relaxation of photon induced hotspot in two dimensional amorphous WSi films. The time constants are obtained through magnetoconductance measurements in perpendicular magnetic field in the superconducting fluctuation regime and through time-resolved photoresponse to optical pulses. The excess magnetoconductivity is interpreted in terms of the weak-localization effect and superconducting fluctuations. Aslamazov-Larkin, and Maki-Thompson superconducting fluctuation alone fail to reproduce the magnetic field dependence in the relatively high magnetic field range when the temperature is rather close to Tc because the suppression of the electronic density of states due to the formation of short lifetime Cooper pairs needs to be…
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