Title :
Performance of photon-number resolving transition-edge sensors with integrated 1550 nm resonant cavities
Author :
Rosenberg, D. ; Lita, A.E. ; Miller, A.J. ; Nam, S. ; Schwall, R.E.
Author_Institution :
Nat. Inst. of Stand. of Technol., Boulder, CO, USA
fDate :
6/1/2005 12:00:00 AM
Abstract :
Many quantum-information applications require high-efficiency, low-noise, single-photon detectors that operate at visible and near-infrared wavelengths. The tunable superconducting critical temperature and anomalously low electron-phonon coupling of tungsten make it a suitable material for the fabrication of transition-edge sensors (TESs) that meet these requirements. The quantum efficiency of a typical tungsten TES detector, intrinsically around 15% at 1550 nm, can be increased by placing the tungsten detector in a resonant cavity, but the performance of a device embedded in a cavity has not been tested previously. We demonstrate that the presence of the cavity does not adversely affect the sensitivity or response time, and we report on the device characteristics of a new generation of tungsten TESs with greater than 80% quantum efficiency at 1550 nm.
Keywords :
infrared detectors; photon counting; superconducting cavity resonators; superconducting particle detectors; superconducting photodetectors; tungsten; 1550 nm; W; infrared detectors; photodetectors; photon-number resolving transition-edge sensors; quantum efficiency; resonant cavities; superconducting radiation detectors; tungsten TES detector; Delay; Detectors; Fabrication; Optoelectronic and photonic sensors; Resonance; Superconducting materials; Superconducting transition temperature; Temperature sensors; Testing; Tungsten; Infrared detectors; photodetectors; quantum efficiency; superconducting radiation detectors;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2005.849925