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GridPix application to dual phase TPC
by
Tiseni, Andrea
, Alfonsi, Matteo
, van der Graaf, Harry
, Decowski, Michael Patrick
, van Bakel, Niels
, Schön, Rolf
, Colijn, Auke-Pieter
in
Aluminum
/ Argon
/ CMOS
/ Cryogenic temperature
/ Dark matter
/ Devices
/ Electric fields
/ Energy resolution
/ Feasibility studies
/ Outgassing
/ Physics
/ Pixels
/ Radiation counters
/ Rare gases
/ Single electrons
/ Temperature
/ Xenon
2013
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GridPix application to dual phase TPC
by
Tiseni, Andrea
, Alfonsi, Matteo
, van der Graaf, Harry
, Decowski, Michael Patrick
, van Bakel, Niels
, Schön, Rolf
, Colijn, Auke-Pieter
in
Aluminum
/ Argon
/ CMOS
/ Cryogenic temperature
/ Dark matter
/ Devices
/ Electric fields
/ Energy resolution
/ Feasibility studies
/ Outgassing
/ Physics
/ Pixels
/ Radiation counters
/ Rare gases
/ Single electrons
/ Temperature
/ Xenon
2013
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Do you wish to request the book?
GridPix application to dual phase TPC
by
Tiseni, Andrea
, Alfonsi, Matteo
, van der Graaf, Harry
, Decowski, Michael Patrick
, van Bakel, Niels
, Schön, Rolf
, Colijn, Auke-Pieter
in
Aluminum
/ Argon
/ CMOS
/ Cryogenic temperature
/ Dark matter
/ Devices
/ Electric fields
/ Energy resolution
/ Feasibility studies
/ Outgassing
/ Physics
/ Pixels
/ Radiation counters
/ Rare gases
/ Single electrons
/ Temperature
/ Xenon
2013
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Journal Article
GridPix application to dual phase TPC
2013
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Overview
GridPix is a gas-filled detector with an aluminium mesh stretched 50 μm above the Timepix CMOS pixel chip. This defines a high electric field where gas amplification occurs. A feasibility study is ongoing at Nikhef for the application of the GridPix technology as a charge sensitive device in a dual phase noble gas Time Projection Chamber (TPC), within the framework of the DARWIN design study for next generation dark matter experiments. The smallness of the device and well defined materials allow for high radio-purity and low outgassing. The high granularity of a pixel readout and the high detection efficiency of single electrons of GridPix bring benefits especially in terms of energy resolution for small energy deposits. This feature is interesting also for the measurement of the scintillation yield and the ionisation yield of noble liquids. The accurate measurements of such quantities have a direct impact on the data interpretation of dark matter experiments. The application in dual phase argon or xenon TPCs implies several technological challenges, such as the survival of the device at cryogenic temperature as well as the operation in a pure noble gas atmosphere without discharges. We describe here the recent developments of the project.
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