Published June 1997 | Version v1
Journal article

On the detection of single optical photons with superconducting tunnel junction

  • 1. Astrophysics Division, Space Science Department of the European Space Agency, ESTEC, Post Office Box 299, 2200 AG Noordwijk (The Netherlands)
  • 2. Cambridge Microfab Limited, Trollheim Cranes Lane, Kingston, Cambridge CB3 7NJ (England)
  • 3. Oxford Instruments Scientific Research Division, Newton House, Cambridge Business Park, Cowley Road, Cambridge CB4 4WZ (England)

Description

We report the detection of individual optical and ultraviolet photons using a different approach to photon detection based on a superconducting tunnel junction. A 20x20μm2 junction, employing a 100 nm niobium film and operated at a temperature of ∼0.4K, has been used to detect individual photons with inherently high quantum efficiency (>45%) over a broad wavelength range (between 200 and 500 nm), yielding high temporal (sub-ms) resolution, spatial resolution determined by the junction size, under conditions of minimal dark current, and in the absence of read noise. The quantum efficiency is limited by surface reflection, and could be improved by the deposition of antireflection coatings. The theoretical wavelength response range continues into the far UV and soft x-ray region, and is presently limited beyond 500 nm largely by the available signal processing electronics. The device intrinsically functions at very high incident photon rates emdash with count rates of order ∼10kHz or higher being feasible and again currently limited primarily by the signal processing electronics emdash thus providing a correspondingly enhanced dynamic range by several orders of magnitude compared with previous panoramic photon counting detectors. The measured charge output from the device is highly linear with photon energy resulting in an optical photon detection system with intrinsic spectral resolution, related to the critical temperature of the junction material and, in the current device, providing a limiting spectral resolution of about 50 nm. It is realistic in the future to envisage that these devices could be packaged into arrays, with the resulting system characteristics offering advantages over detectors based on semiconductors. copyright 1997 American Institute of Physics

Additional details

Publishing Information

Journal Title
Journal of Applied Physics
Journal Volume
81
Journal Issue
11
Journal Page Range
p. 7641-7646.
ISSN
0021-8979
CODEN
JAPIAU