Title :
Technique for fabricating tungsten thin film sensors with T/sub c/ /spl les/100 mK on germanium and silicon substrates [dark matter detectors]
Author :
Young, B.A. ; Nam, S.W. ; Brink, P.L. ; Cabrera, B. ; Chugg, B. ; Clarke, R.M. ; Davies, A.K. ; Irwin, K.D.
Author_Institution :
Dept. of Phys., Santa Clara Univ., CA, USA
fDate :
6/1/1997 12:00:00 AM
Abstract :
Until recently, our work on superconducting thin film phonon sensors for cryogenic detector applications was limited to silicon substrates only. We have now successfully extended low T/sub c/ (/spl les/100 mK) tungsten sensor technology and sensor fabrication capability to include high purity germanium substrates as well. Here, we describe a technique for fabricating low T/sub c/ superconducting tungsten films on germanium, and we present first results from cryogenic characterization experiments with these films. We also summarize our work on the development of a process to independently etch aluminum and tungsten films deposited on the same germanium substrate. The capability to selectively etch aluminum and tungsten films is critical for the fabrication of our silicon and soon also germanium detectors which utilize overlapping thin films of superconducting tungsten and aluminum for the phonon sensors. Due to the nature of their operation, we refer to these sensors as W/Al Quasiparticle trap assisted-Electrothermal feedback-Transition edge (QET) Sensors.
Keywords :
cosmic ray apparatus; dark matter; electron device manufacture; etching; germanium radiation detectors; low-temperature techniques; phonons; quasiparticles; silicon radiation detectors; substrates; superconducting particle detectors; superconducting thin films; tungsten; 100 mK; Al; Ge; Ge substrate; QET Sensors; Si; Si substrate; W; W thin film sensors; W/Al Quasiparticle trap assisted-Electrothermal feedback-Transition edge Sensors; cryogenic characterization experiments; cryogenic detector applications; dark matter; etching; fabrication; low T/sub c/ superconducting W films; massive cryogenic particle detectors; sensor fabrication capability; superconducting thin film phonon sensors; Aluminum; Cryogenics; Detectors; Germanium; Phonons; Substrates; Superconducting films; Superconducting thin films; Thin film sensors; Tungsten;
Journal_Title :
Applied Superconductivity, IEEE Transactions on