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Resistive fine granularity Micromegas: characterization and performance for different spark protection resistive schemes
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Abstract
The aim of the presented work is the development of
single-stage amplification resistive Micro Pattern Gas Detectors
(MPGD) based on Micromegas technology with the following
characteristics: ability to efficiently operate up to 10 MHz/cm2
counting rate; scalability to large areas; fine granularity readout
with small pads of the order of mm2; good spatial and time
resolutions (below 100 um
and 10 ns, respectively). The miniaturization of the readout
elements and the optimization of the spark protection system, as
well as the stability and robustness under operation, are the
primary challenges of the project. Two families of resistive
patterns were realized using different techniques: pad-patterned
embedded resistors and double-layer of Diamond Like Carbon (DLC)
structures foils. The main difference between them is that for the
embedded resistors the charge is evacuated through independent pads,
for double-layer DLC the resistive layers are continuous and uniform
and the charge is evacuated through a network of dot-connections,
several millimetres apart. Using the DLC technique, a medium-size
detector with an active area of 400 cm2 was recently built and
tested, with the main results reported in this paper. Additionally,
a large module (40 cm2 x 50 cm2 active area), suitable
for tiling large systems in future experiments, has been
successfully realised and is currently undergoing testing and
performance studies.
The characterization and performance studies of the detectors were
conducted using radioactive sources and an X-rays generator, with
the detectors operated with various gas mixtures. A comparison of
the results obtained with different resistive layouts and
configurations is provided, with a particular focus on the response
under high-rate exposure. Key results on tracking and timing
performance from test-beam data for the latest constructed
medium-size detector are also presented.
Title: Resistive fine granularity Micromegas: characterization and performance for different spark protection resistive schemes
Description:
Abstract
The aim of the presented work is the development of
single-stage amplification resistive Micro Pattern Gas Detectors
(MPGD) based on Micromegas technology with the following
characteristics: ability to efficiently operate up to 10 MHz/cm2
counting rate; scalability to large areas; fine granularity readout
with small pads of the order of mm2; good spatial and time
resolutions (below 100 um
and 10 ns, respectively).
The miniaturization of the readout
elements and the optimization of the spark protection system, as
well as the stability and robustness under operation, are the
primary challenges of the project.
Two families of resistive
patterns were realized using different techniques: pad-patterned
embedded resistors and double-layer of Diamond Like Carbon (DLC)
structures foils.
The main difference between them is that for the
embedded resistors the charge is evacuated through independent pads,
for double-layer DLC the resistive layers are continuous and uniform
and the charge is evacuated through a network of dot-connections,
several millimetres apart.
Using the DLC technique, a medium-size
detector with an active area of 400 cm2 was recently built and
tested, with the main results reported in this paper.
Additionally,
a large module (40 cm2 x 50 cm2 active area), suitable
for tiling large systems in future experiments, has been
successfully realised and is currently undergoing testing and
performance studies.
The characterization and performance studies of the detectors were
conducted using radioactive sources and an X-rays generator, with
the detectors operated with various gas mixtures.
A comparison of
the results obtained with different resistive layouts and
configurations is provided, with a particular focus on the response
under high-rate exposure.
Key results on tracking and timing
performance from test-beam data for the latest constructed
medium-size detector are also presented.
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