Readout scheme for the Baby-MIND detector

Slides:



Advertisements
Similar presentations
Sci-Fi tracker for IT replacement 1 Lausanne 9. December 2010.
Advertisements

Bulk Micromegas Our Micromegas detectors are fabricated using the Bulk technology The fabrication consists in the lamination of a steel woven mesh and.
The Design of MINER  A Howard Budd University of Rochester August, 2004.
1 Tianchi Zhao University of Washington Concept of an Active Absorber Calorimeter A Summary of LCRD 2006 Proposal A Calorimeter Based on Scintillator and.
Mathias Reinecke CALICE meeting Argonne EUDET module – Electronics Integration Contents -Next prototype : architecture -HCAL Base Unit (HBU)
Feb 20, 2009 CALICE meeting, Daegu, Korea QRL in Magnetic Field 1 QRLed Driver in Magnetic Field Jaroslav Zalesak Institute of Physics of the ASCR, Prague.
Baby MIND Magnet 10 th June Meeting E.N.. Meeting goals 10 th June meeting goals: – Magnet design endorsement – Choice of coil option – Steel procurement.
Evaluation of Silicon Photomultiplier Arrays for the GlueX Barrel Calorimeter Carl Zorn Radiation Detector & Medical Imaging Group Jefferson Laboratory,
Uni Bergen:G. Eigen, J. Zalieckas, E. van der Kraaij FZU Prague: J. Cvach, J. Kvasnicka, I. Polák CALICE meeting, Argonne, 19/03/2014.
Development of Multi-pixel photon counters(2) M.Taguchi, T.Nakaya, M.Yokoyama, S.Gomi(kyoto) T.Nakadaira, K.Yoshimura(KEK) for KEKDTP photon sensor group.
VC Feb 2010Slide 1 EMR Construction Status o General Design o Electronics o Cosmics test Jean-Sebastien Graulich, Geneva.
CM26 March 2010Slide 1 EMR Status o Intro o Construction o Magnetic shielding o Electronics o Prototype Cosmics test o Schedule Jean-Sebastien Graulich,
Status report on MURAY telescope R&D
Activities relevant to Neutrinos in the UK Alfons Weber Oxford/RAL Durham, 11-Mar-2011.
The AFTER electronics from a user’s point of view D. Attié, P. Colas Mamma meeting,CERN Feb T2K electronics.
Development of Multi-pixel photon counters(2) M.Taguchi, T.Nakaya, M.Yokoyama, S.Gomi(kyoto) T.Nakadaira, K.Yoshimura(KEK)
Shashlyk FE-DAQ requirements Pavel Semenov IHEP, Protvino on behalf of the IHEP PANDA group PANDA FE-DAQ workshop, Bodenmais April 2009.
R&D status of the Scintillator- strip based ECAL for the ILD Oct LCWS14 Belgrade Satoru Uozumi (KNU) For the CALICE collaboration Scintillator strips.
Baby-Mind SiPM Front End Electronics
AHCAL Electronics. Status Commissioning Mathias Reinecke for the AHCAL developers HCAL main meeting Hamburg, Dec. 10th, 2009.
ERC - Elementary Readout Cell Miguel Ferreira 18 th April 2012
PSD upgrade: concept and plans - Why the PSD upgrade is necessary? - Concept and status of the PSD temperature control - Concept of the PSD analog part.
FSC Status and Plans Pavel Semenov IHEP, Protvino on behalf of the IHEP PANDA group PANDA Russia workshop, ITEP 27 April 2010.
Multipixel Geiger mode photo-sensors (MRS APD’s) Yury Kudenko ISS meeting, KEK, 25 January 2006 INR, Moscow.
Scintillator tile – SiPM development at ITEP Michael Danilov, ITEP CALICE Meeting, Casablanca, 23 Sep 2010.
SiPM for CBM Michael Danilov ITEP(Moscow) Muon Detector and/or Preshower CBM Meeting ITEP
2007 detectors study at CERN 1.SiPM time resolution 2.MAPD S60 3.Blue sensitive MAPD 4.New 16ch board 5.New HV.
December Status of MRS photodiodes ND280 Convener’s Meeting, 9 June 2006 Yury Kudenko INR, Moscow.
5-9 June 2006Erika Garutti - CALOR CALICE scintillator HCAL commissioning experience and test beam program Erika Garutti On behalf of the CALICE.
Readout Architecture for MuCh Introduction of MuCh Layout of Much ( proposed several schemes) Read ASIC’s Key features Basic Readout chain ROC Block Diagram.
10/20/2015 TASD and MIND prototype and tests at CERN SPSC Oct Tests of TASD and MIND prototypes at CERN.
Status of the PSD upgrade - Status of the PSD cooling and temperature stabilization system - MAPD gain monitoring system - PSD readout upgrade F.Guber,
PSD upgrade: concept and plans - Why the PSD upgrade is necessary? - Concept of the PSD temperature stabilization and control - Upgrade of HV control system.
Performance of Scintillator-Strip Electromagnetic Calorimeter for the ILC experiment Satoru Uozumi (Kobe University) for the CALICE collaboration Mar 12.
A Brand new neutrino detector 「 SciBar 」 (2) Y. Takubo (Osaka) - Readout Electronics - Introduction Readout electronics Cosmic ray trigger modules Conclusion.
Siena, May A.Tonazzo –Performance of ATLAS MDT chambers /1 Performance of BIL tracking chambers for the ATLAS muon spectrometer A.Baroncelli,
Super-IFR Detector R&D summary Wander Baldini Ferrara, Padova, Roma1 INFN and University on behalf of the superB-IFR group: Ferrara, Padova, Roma1 INFN.
Status of NEWCHOD E.Guschin (INR), S.Kholodenko (IHEP), Yu.Kudenko (INR), I.Mannelli (Pisa), O.Mineev (INR), V.Obraztsov (IHEP), V.Semenov(IHEP), V.Sugonyaev.
Upgrade of the MEG liquid xenon calorimeter with VUV-light sensitive large area SiPMs Kei Ieki for the MEG-II collaboration 1 II.
Baby MIND, Large Area Trigger Counters E. Noah WA105 General Meeting 21 January 2015.
AHCAL Electronics. Status of Integration Mathias Reinecke for the DESY AHCAL developers AHCAL main and analysis meeting Hamburg, July 16th and 17th, 2009.
IFR Status Report W. Baldini, on behalf of the Ferrara SuperB-Group XIV SuperB General Meeting, Frascati Sept.27 – Oct
Baby MIND Status 28 April 2015 – Third Hyper-K EU meeting E. NOAH A. Blondel, F. Cadoux, M. Capeans, N. Chikuma, H. Da Silva, A. Dudarev, Y. Favre, P-A.
Study of the MPPC for the GLD Calorimeter Readout Satoru Uozumi (Shinshu University) for the GLD Calorimeter Group Kobe Introduction Performance.
Development of Multi-pixel photon counters(2) M.Taguchi, T.Nakaya, M.Yokoyama, S.Gomi(kyoto) T.Nakadaira, K.Yoshimura(KEK) for KEKDTP photon sensor group.
Baby MIND Scintillator modules 11 November 2015 Revision E. Noah.
Future Beam Test Plans of the Calorimeter Group Aug 学術創成会議 Satoru Uozumi (Shinshu) for the GLD calorimeter group We are planning to have two beam.
Prototype Assemblying, SiPM Characterization and QC
The dynamic range extension system for the LHAASO-WCDA experiment
IFR Detector R&D status
IFR Detector R&D status
The PSD at Pb-Pb run PSD drawbacks at Ar beam
Baby-Mind SiPM Front End Electronics
CTA-LST meeting February 2015
IFR Status Summary W. Baldini on behalf of the IFR Group
PSD Front-End-Electronics A.Ivashkin, V.Marin (INR, Moscow)
Baby-Mind SiPM Front End Electronics
The Beam Test at Fermilab:
IHEP group Shashlyk activity towards TDR
Baby MIND Status on T9 E. Noah 6th July 2017.
Characteristics of S12045(X) photon sensors for GlueX
E. Noah, A. Blondel, Y. Favre, R. Tsenov 29 July 2015
FEB v2 Status Y. Favre 15 March 2017.
CLAS12 Forward Detector Element PCAL
Front-end electronic system for large area photomultipliers readout
Chris Smith California Institute of Technology EPS Conference 2003
Felix Sefkow CALICE/EUDET electronics meeting CERN, July 12, 2007
Efficiency Study of Prototype Scintillator for INGRID
MPPC for T2K Fine-Grained Detector
R&D of MPPC in kyoto M.taguchi.
Presentation transcript:

Readout scheme for the Baby-MIND detector E. Noah1, A. Blondel1, Y. Favre1, Y. Kudenko2, O. Mineev2, R. Tsenov2 1University of Geneva, Switzerland 2INR, Russia PD15: Moscow: Troitsk: 6-9 July 2015

Outline The Baby-MIND detector Detector module characteristics Choice of photosensors Module light yield with CITIROC Baby MIND Front End Board

The Baby-MIND detector WA105 @ EHN1 extension Muon spectrometer consisting of magnetized plates of iron interleaved with plastic scintillator detector modules. Modularity in magnetization design simplifies proposed use at various facililities, downstream of: WAGASCI at J-PARC (2016 onwards) : anti-nu selection efficiencies > 90%. LAr (WA105) (2017 onwards): Use of MIND detectors integrated from start of studies or Long Baseline experiments in Europe (LBNO): muon charge ID and momentum, tail catching of hadronic showers. Baby MIND could provide partial acceptance for events in 6×6×6m3 of WA105 LAr. WAGASCI @ J-PARC Baby-MIND positioned here Wagasci Side MRDs

Optical readout of plastic scintillator planes PMT PMT-based: MICE-EMR installed at RAL Sep. 2013 SiPM-based: AIDA Baby MIND Implemented for several thousand channels first at T2K ND280 SiPM

Plastic scintillator bars: Detector modules Poster: The design, construction and testing of TASD: A. Mefodiev et al. Plastic scintillator bars: Extruded scintillator slabs produced at Uniplast company, Vladimir, RU: polysterene-based, 1.5% paraterphenyl (PTP) and 0.01% POPOP. Slabs etched with chemical agent (Uniplast) to create a 30-100 mm layer that acts as a diffusive layer Custom optical connectors (INR design for AIDA) Kuraray Y11 WLS fiber in 2mm deep groove Dimensions: 900 x 10 x 7 mm3 Module characteristics : 2 planes, X/Y Each plane: 84 plastic scintillator bars 1st prototype Nov. 2014 Photosensor connector: INR design Optical cement light transmission WLS fiber: St. Gobain & Kuraray Y11 Light yield measured for > 9000 bars

Photosensors Options tested: Selection: MPPC/ASD40/KETEK/SensL Several MPPC variants Selection: Hamamatsu MPPC S12571-025C 1 × 1 mm2 25 mm cell size 3000 delivered by 6 Mar. 2015 MPPC test data by Hamamatsu Vop [V] 25oC Dark cnts [kHz] thres.: 0.5 p.e. WLS fiber and MPPC alignment

Calibration & digitization Lab. Cosmic m, radiosource 6 SiPM 5 Individual bar characterization: n bars 4 3 Module QA: n/m bars 2 Charged particle 1 Beamline Scintillation Light trapping efficiency in WLS fiber Light attenuation in WLS fiber Optical connector insertion loss SiPM response Electronics response Cosmic m? m,p,e,p

Bar light yield test: post module assembly Channel configuration: channels under test ch0-15 ch15 ch7 ch23 ch0 ch8 ch16 ch27 ch24 ch31 ch28 Setup in dark room 25oC

Module characterisation with CITIROC evaluation board ADC [12-bit] FPGA MPPC x32 Plastic Scint. bars x32 Delay usb LabVIEW

CITIROC shaper time constant OR32/Hold delay 40 ns 50 ns 60 ns

Regime: Dynamic range (HG): > 1600 p.e. with LG. Varying Pre-amp Feedback capacitance Feedback capa. = 1 [arb.] 48.2 ADC/p.e. Regime: high enough gain to resolve indivual p.e. peaks whilst avoiding saturation Dynamic range (HG): 12-bit ADC Baseline ~950 19.3 ADC/p.e. 160 p.e. > 1600 p.e. with LG. Feedback capa. = 4 [arb.] 32.2 ADC/p.e. Feedback capa. = 6 [arb.] 25.6 ADC/p.e. Feedback capa. = 8 [arb.] 19.3 ADC/p.e.

Light yield: sum of both ends of bar Bar pos. [#] Bar ID Bar INR [p.e.] Module 1 6421 124.4 145.2 2 6411 125.4 155.4 3 6422 119.0 138.7 4 6410 134.6 153.6 5 6414 112.9 142.5 6 6409 118.6 136.6 7 6412 129.4 146.2 8 6413 183

“Optical” crosstalk: light yield in adjacent bars ch15 ch7 ch23 ch0 ch8 L.y. cuts: Ch3>70p.e. Ch11>70p.e. Ch19>70p.e. ch16 ch27 ch24 ch31 ch28

“Optical” crosstalk: l.y. sum of both ends collected in adjacent bars

Baby MIND electronics chain

Baby MIND FEB FEB characteristics : 96 SiPM channels (mini coax. connectors), 84 used for Baby MIND 3 CITIROC ASICs (32 ch charge ampl., trigs, ext. common HV + independent 0/4V) 12-bits 8-ch ADC 40Ms/s/ch 2 x 6Gb/s transceiver (800Mb/s for Baby MIND) USB3.0 (5Gb/s) µC for lab, calib. & maintenance LV & HV power supplies Altera ARIA 5 FPGA (mid-range), firmware : 84 ch. Timing meas (2/2.5ns resolution) Charge meas. (from 12-bits ADC) Baseline computation (filtering) USB3.0 gateway Gigabit protocol for readout (exp.) Baby MIND FEB (Photo by Y. Favre 12 March 2015) PCB: 8 layers 120µm space/width lines Impedance & length control (TDC) Schedule: First prototype FEB 11 March 2015 Firmware development ongoing ~ 30 Baby MIND FEBs Dec. 2015

FEB firmware architecture

Baby MIND spectrometer modules: Summary Baby MIND spectrometer modules: all 9400 bars measured for light yield at INR before assembly into modules at UniGe choice of photosensor made, 3000 MPPC S12571-025C delivered by March 2015 with good QA data Test procedure for module characterization Electronics: CITIROC tested with evaluation board from Omega Microelectronics (8-bit DAC for Vop, Pre-amp gain, shaper, discriminator, Or32 Mask) FEB produced (3 CITIROC/FEB) Firmware architecture done (documented) Firmware implementation ongoing

thanks to F. Cadoux, M. Dementjoz, S. Fedotov, A. Khotyantsev, A. Kleimenova, A. Mefodiev, L. Nicola, T. Ovsiannikova, N. Yershov... ... to you for your attention

Back-up

Tested SiPM parameters at INR

Tested SiPM performance at INR

Tests of 1 x 1 mm2 MPPC at INR “New” MPPC 50mm cell size same optical cross-talk and afterpulsing for both, sensitive area difference: 1x1 mm2 = 16.4 p.e. 1.3x1.3 mm2 = 17.2 p.e.

Hamamatsu options tested

Hamamatsu options vs readout

Hamamatsu MPPC S12571-025C spec.

Hamamatsu MPPC S12571-025C: gain and PDE