DocumentCode :
3601303
Title :
A Gamma Radiation Detector With Orthogonally Arrayed Micromachined Electrodes
Author :
Malhotra, Ravish ; Gianchandani, Yogesh B.
Author_Institution :
Center for Wireless Integrated MicroSensing & Syst., Univ. of Michigan, Ann Arbor, MI, USA
Volume :
24
Issue :
5
fYear :
2015
Firstpage :
1314
Lastpage :
1321
Abstract :
Microfabricated radiation detectors can be used to provide first alert information about presence of harmful radiation. This paper describes a micromachined gamma detector that operates in the Geiger-Muller (G-M) regime. Gamma rays eject photoelectrons from the cathode material through the photoelectric effect and/or Compton scattering, which in turn ionize the Ar fill-gas providing a current pulse. The detector utilizes cathode stacks that are micromachined from stainless steel #304 foil. Micromachined glass fingers with thin-film anode metal traces are positioned transversely through aligned perforations in the stacked cathodes. This orthogonal array of anodes and cathodes effectively distinguishes electron avalanche regions from drift regions despite the miniaturization, thereby reducing the likelihood of spurious discharges. Overall, the detector diameter and height are 9 and 2.5 mm, respectively. Detector performance is characterized using a 99-μCi 137Cs source placed at a distance of 3 cm from the detector. In an integration time of 10 min at an applied voltage of 630 V, a source:background ratio of 89:1 is achieved-a fivefold improvement over the previously reported micromachined devices operating in the G-M regime. This architecture also reduces the typical charge per discharge to 6.6 pC, allowing the estimated dead time between detection events to be ~1 μs.
Keywords :
Compton effect; Geiger counters; anodes; electron avalanches; gamma-ray detection; gamma-rays; glass; microelectrodes; micromachining; microsensors; particle detectors; photocathodes; photodetectors; sensor arrays; stainless steel; thin film sensors; Ar fill-gas; Compton scattering; G-M regime; Geiger-Muller regime; cathode material stack; distance 2.5 mm; distance 3 cm; distance 9 mm; electron avalanche; ionization; material; microfabrication; micromachined gamma radiation detector; micromachined glass finger; orthogonal anode array; orthogonally arrayed micromachined electrode; photoelectric effect; photoelectron; stainless steel #304 foil; thin-film anode metal; time 10 min; voltage 630 V; Anodes; Cathodes; Detectors; Discharges (electric); Glass; Metals; Geiger-Muller; counter; micro- discharge; micro-discharge; microplasma; microplasma.; nuclear;
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2015.2394322
Filename :
7035024
Link To Document :
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