HIGH RATE BEHAVIOUR AND DISCHARGE LIMITS IN MICRO-PATTERN DETECTORS A. Bressan, M. Hoch, P. Pagano, L. Ropelewski and F. Sauli (CERN, Geneva, Switzerland)

Slides:



Advertisements
Similar presentations
Triple-GEM detector operation for high-rate particle triggering W. Bonivento, G. Bencivenni, A. Cardini, C. Deplano, P. de Simone, F. Murtas, D. Pinci,
Advertisements

General Characteristics of Gas Detectors
Standard GEM Charging Up Simulation: First test of the approach Matteo Alfonsi, Gabriele Croci, Serge Duarte Pinto, Leszek Ropelewski, Rob Veenhof, Marco.
1 MUON TRACKER FOR CBM experiment Murthy S. Ganti, VEC Centre Detector Choice.
Atsuhiko Ochi Kobe University 4/10/ th RD51 collaboration meeting.
Beam tests of Fast Neutron Imaging in China L. An 2, D. Attié 1, Y. Chen 2, P. Colas 1, M. Riallot 1, H. Shen 2, W. Wang 1,2, X. Wang 2, C. Zhang 2, X.
Gas Detector Developments Jin Li. Liquid Xenon case Liquid Xenon can be considered as a gaseous xenon of 520 atm. K.Masuda, S. Takasu, T.Doke et al. (Doke.
Simulation of the spark rate in a Micromegas detector with Geant4 Sébastien Procureur CEA-Saclay.
Simulation of the spark rate in a Micromegas detector with Geant4 Sébastien Procureur CEA-Saclay.
Aging, High Rate and Shielding L. Lopes Lip-Coimbra.
GEM Detector Shoji Uno KEK. 2 Wire Chamber Detector for charged tracks Popular detector in the particle physics, like a Belle-CDC Simple structure using.
Miyamoto/Shipsey SC LC Retreat 6/27-30/02 Recent activities on Micropatterned Gas Detectors at Purdue Jun Miyamoto and Ian Shipsey Presented for the Santa.
Position sensing in a GEM from charge dispersion on a resistive anode Bob Carnegie, Madhu Dixit, Steve Kennedy, Jean-Pierre Martin, Hans Mes, Ernie Neuheimer,
Linear Collider TPC R&D in Canada Madhu Dixit Carleton University.
D. Peterson, Cornell Univ., “Round table” 23-Jan-2003 Cornell Linear Collider Detector Research Cornell Interests: The Cornell group proposes to contribute.
Detector R & D plan Detector Development plan Detector Simulations Conclusion SINP/VECC Meeting High Energy Physics Group, BHU.
M.Alfonsi 1, G. Bencivenni 1, W. Bonivento 2,A.Cardini 2,C. Deplano 2, P. de Simone 1, F.Murtas 1, D.Pinci 3, M. Poli-Lener 1, D. Raspino 2 and B.Saitta.
Simulation of the spark rate in a Micromegas detector with Geant4 Sébastien Procureur CEA-Saclay.
KIT – University of the State of Baden-Wuerttemberg and National Research Center of the Helmholtz Association Institut für Experimentelle Kernphysik
Presented by: Katayoun Doroud World Laboratory fellow under Supervision of: Crispin Williams ALICE TOF General meeting, CERN – Build 29, 9 December 2009.
D. Attié CEA Saclay/Irfu RD51 – ALICE Workshop June 18 th, 2014 ILC-TPC Micromegas: Ion Backflow Measurements.
Systematic studies on the rate capability of MWPC operated in Xe/CO 2 D. Gonzalez-Diaz for the CBM-TRD group March, 2008.
Latest developments of MPGDs with resistive electrodes: Developments and tests of the of microstrip gas counters with resistive electrodes R. Oliveira,
GEM: A new concept for electron amplification in gas detectors Contents 1.Introduction 2.Two-step amplification: MWPC combined with GEM 3.Measurement of.
D. Menichelli, RD50, Hamburg, august TSC, DLTS and transient analysis in MCz silicon Detectors at different process temperature, irradiation.
Geant4 Simulation of Neutrons interaction with GEM-foil and gas Gabriele Croci, Matteo Alfonsi, Serge Duarte Pinto, Leszek Ropelewski, Marco Villa (CERN)
TPC R&D status in Japan T. Isobe, H. Hamagaki, K. Ozawa, and M. Inuzuka Center for Nuclear Study, University of Tokyo Contents 1.Development of a prototype.
Ionization Detectors Basic operation
Experimental and Numerical studies on Bulk Micromegas SINP group in RD51 Applied Nuclear Physics Division Saha Institute of Nuclear Physics Kolkata, West.
Preliminary results of a detailed study on the discharge probability for a triple-GEM detector at PSI G. Bencivenni, A. Cardini, P. de Simone, F. Murtas.
PNPI R&D on based detector for MUCH central part (supported by INTAS ) E. Chernyshova, V.Evseev, V. Ivanov, A. Khanzadeev, B. Komkov, L.
Plans for MPGD Radiation hardness tests for full detectors and components Matteo Alfonsi,Gabriele Croci, Elena Rocco, Serge Duarte Pinto, Leszek Ropelewski.
1 Update on Silicon Pixel Readout for a TPC at NIKHEF LCWS08 - Chicago 19 Nov 2008 Jan Timmermans NIKHEF.
Summer Student Session, 11/08/2015 Sofia Ferreira Teixeira Summer Student at ATLAS-PH-ADE-MU COMSOL simulation of the Micromegas Detector.
Standard GEM Charging Up Simulation Gabriele Croci, Matteo Alfonsi, Serge Duarte Pinto, Leszek Ropelewski, Rob Veenhof, Marco Villa (CERN), Elena Rocco.
Numerical Studies on IBF of BULK Micromegas RD51.
UTA Digital hadron Calorimetry using the GEM concept J.Li, A.White, J.Yu 5/30/02.
A.Ochi*, Y.Homma, T.Dohmae, H.Kanoh, T.Keika, S.Kobayashi, Y.Kojima, S.Matsuda, K.Moriya, A.Tanabe, K.Yoshida Kobe University PSD8 Glasgow1st September.
Discharge Studies in MPGD: what could be done in the frame of WG-2 collaboration P. Fonte, V. Peskov.
1 Two-phase Ar avalanche detectors based on GEMs A. Bondar, A. Buzulutskov, A. Grebenuk, D. Pavlyuchenko, Y. Tikhonov Budker Institute of Nuclear Physics,
GEM+Timepix2 in the framework of project Gabriele Croci, Matteo Alfonsi on behalf of CERN-GDD Group RD51 Miniweek, February 2010.
Construction and Characterization of a GEM G.Bencivenni, LNF-INFN The lesson is divided in two main parts: 1 - construction of a GEM detector (Marco Pistilli)
T. Zerguerras- RD51 WG Meeting- CERN - February Single-electron response and energy resolution of a Micromegas detector T. Zerguerras *, B.
A.Ochi Kobe University MPGD2009 Crete 13 June 2009.
1 A two-phase Ar avalanche detector with CsI photocathode: first results A. Bondar, A. Buzulutskov, A. Grebenuk, D. Pavlyuchenko, R. Snopkov, Y. Tikhonov.
Single GEM Measurement Matteo Alfonsi,Gabriele Croci and Bat-El Pinchasik June 25 th 2008 GDD Meeting 1.
Simulation of new P-Type strip detectors 17th RD50 Workshop, CERN, Geneva 1/15 Centro Nacional de MicroelectrónicaInstituto de Microelectrónica de Barcelona.
Recent test results of TGEM-Prototypes in INR, Moscow V.I.Razin, А.B.Kurepin, B.M.Ovchinnikov, A.I.Reshetin, E.A.Usenko, S.N.Filippov, D.A.Finogeev Institute.
R&D Collaboration, CERN – September 10, Micromegas Performance and Ageing studies David Attié MPGD. Towards an R&D Collaboration,
Thorsten Lux. Charged particles X-ray (UV) Photons Cathode Anode Amplification Provides: xy position Energy (z position) e- CsI coating 2 Gas (Mixture)
R&D on Hadron Blind detector, recent results Issues addressed: - gain limits in CF 4 with heavily ionizing particles - operation.
New High-Resolution Gadolinium-GEM Neutron Detectors for the NMX Instrument at ESSs D. Pfeiffer 1,2, F. Resnati 1,2, R. Hall-Wilton 1,4, J. Birch 3, M.
SIMULATION STUDIES ON THE EFFECT OF SF 6 IN THE RPC GAS MIXTURE Mohammed Salim, Aligarh Muslim University, INDIA Presented by Satyanarayana Bheesette,
First results from tests of gaseous detectors assembled from resistive meshes P. Martinengo 1, E. Nappi 2, R. Oliveira 1, V. Peskov 1, F. Pietropaola 3,
Budker INP V.Aulchenko1,2, L.Shekhtman1,2, V.Zhulanov1,2
Yeong-Shin Park and Y. S. Hwang
Saikat Biswas, A. Abuhoza, U. Frankenfeld, C. Garabatos,
WG1 Task2 New structures, new designs, new geometries
THGEM: Introduction to discussion on UV-detector parameters for RICH
Multigap Resistive Plate Chambers (MRPC)
Micropattern Gas Detectors
Numerical simulations on single mask conical GEMs
Numerical simulations on single mask conical GEMs
MWPC’s, GEM’s or Micromegas for AD transfer and experimental lines
GEANT Simulations and Track Reconstruction
Pre-installation Tests of the LHCb Muon Chambers
Lecture №7. 1. The condition of self discharge. 2. Paschen curves. 3. Time of discharge. 4. Gas breakdown in a nonuniform electric field. 5. The emergence.
Micro Resistive Well Detector for Large Area Tracking
Gain measurements of Chromium GEM foils
Presentation transcript:

HIGH RATE BEHAVIOUR AND DISCHARGE LIMITS IN MICRO-PATTERN DETECTORS A. Bressan, M. Hoch, P. Pagano, L. Ropelewski and F. Sauli (CERN, Geneva, Switzerland) S. Biagi (Univ. Liverpool) A. Buzulutskov (Budker Institute for Nuclear Physics, Novosibirsk, Russia) M. Gruwé (DESY-Univ. Hamburg, Germany) G. De Lentdecker (ULB Bruxelles, Belgium) D. Moermann (Univ. Karlsruhe, Germany) A. Sharma (GSI Darmsdtadt, Germany) Nuclear Instruments and Methods in Physics Research A 424 (1999) Presented by Gabriele Croci (CERN-GDD Group) RD51 Working Group 2 Meeting – December the 10 th - CERN

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN2 GOAL Measure the maximum gain of gaseous proportional micropattern detectors when irradiated with high-rate soft X-Rays and heavely ionizing alpha particles List of MPGD Tested: Micro-strips Micromegas Micro-dot Gas electron multiplier (GEM) Micro-CAT or Well

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN3 Discharges in MPGD  High irradiation rate and/or exposure to heavily ionizing tracks can induce transitions from proportional avalanche to streamer probably followed by a discharge (harmful and fatal for the electronics) High electric field present in a large fraction or all gaps between anode and cathode. The field is not uniform and it is higher at the metal/dielectric boundaries GEM y x y = 25 µm

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN4 Experimental Setup and Procedures All measurements on variuos kinds of detector performed in identical conditions (as far as possible) The most appopriate gas used for each detector 1.Absolute gain calibration: different gain G = I a /(R*n p *e) recorded for different operating voltages (anodic I a current measurement) 2.Full volume detector irradiation: For each setting of the X-rays flux, the voltage is increased until reaching instabilities or discharges 3.Exposure to heavily ionizing particles

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN5 Ways of discharges development in MPGDs Spontaneous breakdown in absence of radiation: geometry and position-linked (essential role of quality and local defects) Rate-induced breakdown: reduction of the maximum operating voltage Heavily ionizing tracks exposure: considerable decrease of the maximum safe operating voltage

Spontaneous breakdown in absence of radiation Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN6 The performance of the whole detector is determined by the intrinsic defects of the worst group

Rate-induced breakdown Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN7 Paulo Fonte “The physics of streamer and discharges”; 2 nd RD51 Collaboration meeting Paris October 2008

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN8 Exposure to heavily ionizing particles The gas flow is open to a bypass containing a thorium oxide compound. The mixture is enriched with radon whose main decay mode produces 6.4 MeV α particles Measurements of discharge rate. A discharge is defined as an event causing an overload of the current-limited power supplies set at a threshold of about ten times the average normal current Discharge probability: fraction of signals with exceedingly large amplitude normalized to alpha flux

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN9 Detectors experimental results (1) Standard MSGCMicromegas

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN10 Detectors experimental results (2) Standard GEMConical GEM

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN11 Detectors experimental results (3) Microcat/WELLMicrodot

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN12 Detectors experimental results (4) Standard MSGC + Standard GEM Double GEM

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN13 Summary Detector Gain without α’s irradiation (Max Voltage) Maximum Gain before disch* in presence of α’s (Dischage limit**) Stand. MSGC5000 (590)2000 (550) Micromegas4*10 4 (470)3000 (385) Stand. GEM5000 (540)1500 (485) Conical GEM N  W: 2500 (600) W  N: 3000 (660) N  W: 1500 (570) W  N: 2000 (640) Microcat/Well6000 (540)1500 (490) Microdot10 4 (580) St MSGC+St GEM (ΔV GEM = 400 V) 2*10 5 (V c =625) 10 4 (V c =450) Double GEM (ΔV GEM2 = 400 V) 10 4 (ΔV GEM1 = 460) * (**) Gain (Voltage) just below the first non zero discharge probability

Detector experimental results: GEM (1) Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN14 Gain and discharge probability on irradiation with alpha particles for the single, double and triple GEM

Detector experimental results: Sectored 10x10 cm 2 GEM Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN15 Resistor partition network used to power a sectored GEM Discharge signals on anodes for increasing GEM capacitance, obtained by grouping one to four sectors.0 Discharge propagation probability as a function of induction field for a sectored GEM. S. Bachman et al, Discharge studies and prevention in the gas electron multiplier (GEM), Nucl. Instrum. Methods A479(2002)294

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN16 Conclusions (1) The difference in max gain reached in a low irradiation environment shown by different single stage devices tends to vanish in presence of heavily ionizing particles. In this conditions all single stage devices but microdot shown a non-negligeble probability of transition from avalanche to streamer at gain between 1000 and 3000 This transition begin to occur when the average avalanche size exceeds electrons (close Raether limit)

Gabriele Croci - RD51 WG2 Meeting - December the 10th CERN17 Conclusions (2) Sharing the amplification results in a shift upwards by at least an order of magnitude of the maximum gain This may be explained by: –Field strength dependence of Raether limit (higher for lower electric field) –Reduction of charge density induced by additional spread due to diffusion in double devices