Transition Radiation Detector for GlueX

Similar documents
Transition Radiation Detector for GlueX

Dario Barberis Evaluation of GEANT4 Electromagnetic and Hadronic Physics in ATLAS

Dario Barberis Evaluation of GEANT4 electromagnetic physics in ATLAS

Threshold photoproduction of J/y with the GlueX experiment. Lubomir Pentchev Jefferson Lab for the GlueX collaboration

Particle Detectors A brief introduction with emphasis on high energy physics applications

Tracking properties of the ATLAS Transition Radiation Tracker (TRT)

Radiator. CBM-TRD TDR review 2017, March 14th. Cyrano Bergmann WWU Muenster, Germany

Content. Complex Detector Systems. Calorimeters Velocity Determination. Semiconductor detectors. Scintillation detectors. Cerenkov detectors

The TRD of the CBM experiment

pp physics, RWTH, WS 2003/04, T.Hebbeker

7 Particle Identification. Detectors for Particle Physics Manfred Krammer Institute of High Energy Physics, Vienna, Austria

Expected Performance of the ATLAS Inner Tracker at the High-Luminosity LHC

RATE CAPABILITY OF A HIGH EFFICIENCY TRANSITION RADIATION DETECTOR

Lecture 4 Calorimetry. Lecture 5a - Particle Identification. Lecture 5b - Detector Systems/ Design

Status of the physics validation studies using Geant4 in ATLAS

Information about the T9 beam line and experimental facilities

Chapter 6.2: space based cosmic ray experiments. A. Zech, Instrumentation in High Energy Astrophysics

Commissioning of the ATLAS LAr Calorimeter

1.5 TeV Muon Collider background rejection in ILCroot Si VXD and Tracker (summary report)

Performance of the ATLAS Transition Radiation Tracker in Run 1 of the LHC: tracker properties

Tests of the BURLE 64-anode MCP PMT as the detector of Cherenkov photons

Tracking at the LHC. Pippa Wells, CERN

High-energy Gamma Rays detection with the AMS-02 electromagnetic calorimeter. F. Pilo for the AMS-02 ECAL Group INFN Sezione di Pisa, Italy

Performance of the ATLAS Transition Radiation Tracker in Run 1 of the LHC: tracker properties

DESY Summer Students Program 2008: Exclusive π + Production in Deep Inelastic Scattering

Particle Energy Loss in Matter

Simulation study of scintillatorbased

Transition radiation detectors

Fluxes of Galactic Cosmic Rays

PEBS - Positron Electron Balloon Spectrometer. Prof. Dr. Stefan Schael I. Physikalisches Institut B RWTH Aachen

The reaction p(e,e'p)π 0 to calibrate the Forward and the Large Angle Electromagnetic Shower Calorimeters

III. Energy Deposition in the Detector and Spectrum Formation

Luminosity measurement and K-short production with first LHCb data. Sophie Redford University of Oxford for the LHCb collaboration

PAMELA: a Satellite Experiment for Antiparticles Measurement in Cosmic Rays

Measuring η π+ π- e+ e- with WASA at COSY. Daniel Coderre Hirschegg 2010

ATLAS EXPERIMENT : HOW THE DATA FLOWS. (Trigger, Computing, and Data Analysis)

Cosmic Ray panorama. Pamela.roma2.infn.it PAMELA (2012) Experimental challenges : e + /p ~ 10-3 e + /e - ~ 10-1

Balloon-borne experiment for observation of sub-mev/mev gamma-rays from Crab Nebula using an Electron Tracking Compton Camera

Bose-Einstein correlations in hadron-pairs from lepto-production on nuclei ranging from hydrogen to xenon

Physics sources of noise in ring imaging Cherenkov detectors

Simulation for Proton Charge Radius (PRad) Experiment at Jefferson Lab1 Li Ye Mississippi State University For the PRad Collaboration The Proton Charg

Muon reconstruction performance in ATLAS at Run-2

PHYS 3650L - Modern Physics Laboratory

Transverse momentum spectra of identified charged hadrons with the ALICE detector in Pb-Pb collisions at the LHC

7. Particle identification

EP228 Particle Physics

Energy calibration of the threshold of Medipix for ATLAS

Detectors for Particle Physics. Lecture 2: Drift detectors Muon detectors MWPC, CSC, RPC, TRT, TPC, Cherenkov

FATRAS. A Novel Fast Track Simulation Engine for the ATLAS Experiment. Sebastian Fleischmann on behalf of the ATLAS Collaboration

Recent results on soft QCD topics from ATLAS

arxiv: v1 [physics.ins-det] 3 Feb 2014

Interaction of particles with matter - 2. Silvia Masciocchi, GSI and University of Heidelberg SS2017, Heidelberg May 3, 2017

Studies of transition radiation using silicon on a TimePix3 chip: first results and plans

Production and Searches for Cascade Baryons with CLAS

Particle Energy Loss in Matter

Status of the LHCb Experiment. Ueli Strauman, University of Zurich, Switzerland. Sept. 13, 2001

A Liquid Argon Scintillation Veto for the GERDA Experiment

AIM AIM. Study of Rare Interactions. Discovery of New High Mass Particles. Energy 500GeV High precision Lots of events (high luminosity) Requirements

The LHC Experiments. TASI Lecture 2 John Conway

Richard Hall-Wilton University College London. July 2002

Cherenkov Detector Simulation

Initial Studies in Proton Computed Tomography

Study of the HARPO TPC for a high angular resolution g-ray polarimeter in the MeV-GeV energy range. David Attié (CEA/Irfu)

The ALICE Experiment Introduction to relativistic heavy ion collisions

EM Energy Spectrum from 17.6 MeV photons. Eduardo do Couto e Silva and Xin Chen Feb 13, 2002

The Alice Experiment Felix Freiherr von Lüdinghausen

Exotica production with ALICE

Compton suppression spectrometry

Der Silizium Recoil Detektor für HERMES Ingrid-Maria Gregor

The LHCf experiment at LHC

Beam Dump Experiments at JLab and SLAC

The HERMES Dual-Radiator Ring Imaging Cerenkov Detector N.Akopov et al., Nucl. Instrum. Meth. A479 (2002) 511

Multi Lepton events at HERA

Measurements of the dilepton continuum in ALICE. Christoph Baumann Resonance Workshop, Austin

Interaction of particles in matter

PoS(HCP2009)042. Status of the ALICE Experiment. Werner Riegler. For the ALICE Collaboration. CERN

Summer Student Project Report

Physics Results on the Tagged Structure Functions at HERA

Hadron identification study at the CEPC

The Compact Muon Solenoid Experiment. Conference Report. Mailing address: CMS CERN, CH-1211 GENEVA 23, Switzerland

Particle Identification with the Transition Radiation Detector

Geant4 electromagnetic physics for the LHC and other HEP applications

Dark Matter Searches with AMS-02. AMS: Alpha Magnetic Spectrometer

GEANT4 simulation of the testbeam set-up for the ALFA detector

AMS Transition Radiation Detector 4-Layer Prototype and Gas System Tests

A search for heavy and long-lived staus in the LHCb detector at s = 7 and 8 TeV

HARPO: Measurement of polarised gamma rays (1.7 to 72MeV) with the HARPO TPC

Searching for the Randall-Sundrum Graviton decay to dielectron pairs. Meghan Frate Bucknell University

Tests of the BURLE 64-anode MCP PMT as the detector of Cherenkov photons

GEANT4 Simulations of. the LAXPC Performance. H. M. Antia. Tata Institute of Fundamental Research

Compton Camera. Compton Camera

NA62: Ultra-Rare Kaon Decays

Indirect Search for Dark Matter with AMS-02

Detectors in Nuclear and High Energy Physics. RHIG summer student meeting June 2014

Overview of validations at LHC

David Gascón. Daniel Peralta. Universitat de Barcelona, ECM department. E Diagonal 647 (Barcelona) IFAE, Universitat Aut onoma de Barcelona

Application of Birks' law of scintillator nonlinearity in Geant4. Alexander Tadday Kirchhoff Institute for Physics Heidelberg University

Alice TPC particle identification

Ionization Energy Loss of Charged Projectiles in Matter. Steve Ahlen Boston University

The Neutron/WIMP Acceptance In XENON100

Transcription:

Transition Radiation Detector for GlueX Test with Argon S.Furletov, L. Pentchev Jefferson Lab GlueX Collaboration Meeting Feb 19, 2016

Outline Test setup in Hall D Monte Carlo simulation First results Outlook 2

TRD/FDC test setup in Hall D Test with PS trigger (thanks Sasha for help) PS2 e+ positrons Beam pipe gamma electrons 3 6 GeV γ e- Radiator 15 cm PS1 Special FADC firmware (thanks to Cody) 3

TR absorption spectrum Krypton Xenon Silicon Argon 4

TR absorption length in Xe,Kr,Ar ALICE TRD Path in gas, mm. 5

TR absorption in Argon e-, 3 GeV γ Radiator 15 cm Radiator 5 cm DATA radiators MC 6

Geant4: TR absorption: Ar vs Xe Xenon vs Argon Xe diff Electrons, 3 Gev Xenon Argon 15 cm 0 cm 15 cm 0 cm 7 Ar

Outlook Test TRD in Hall D with Argon consistent with MC Next step would be test with Xenon MC calculation, TRD e / pi rejection electron efficiency 90% 72% N mod 1 module 3 modules 3 modules Xenon 10 450 1600 Krypton 5.7 80 360 Argon 3.5 32 160 8

Backup slides 9 10/9/15 9

What rejection we can expect? Performance of TRD can be parametrized as a function of a detector length. Alice 10

Motivation / detector Transition Radiation Detectors (TRD) has the attractive features of being able to separate particles by their gamma factor. e/π separation in high γ region, where other methods are not working anymore. Identification of the charged particle on the flight : without scattering, deceleration or absorption. Application of TRD in physics experiments: ZEUS, H1, HERMES at HERA (DESY), D0, PHENIX, ATLAS, ALICE... TRD in space missions AMS, PAMELA. 11

Transition radiation γ Transition radiation is produced by a charged particles when they cross the interface of two media of different dielectric constants. e Due to electrodynamic nature of TR the probability to emit one photon per boundary is order of α~1/137 Therefore a multilayer dielectric radiators are used to increase the transition radiation yield, typically few hundreds of mylar foils. 12 γ

From single foil to radiator Another possible materials for radiators are polyethylene foam and fibers (fleece) 13

TR detection Silicon pixel TRD Silicon pixel detector, 450 μ thick. ( pixel size 20x20μ ) The electrons energy is 5 GeV ( DESY testbeam ) Radiator thickness 15 cm ( fleece ) TR photons are clearly visible and separated from track by a few pixels! red lines shows the center of found TR clusters Silicon pixel TRD 14

TRD principle : ATLAS Typically in high energy physics TRD are used for electron identification and to reject hadron background. ATLAS TRT uses proportional gas chambers (straws) filled with Xenon gas mixture: de/dx +TR, Cluster discrimination by threshold method. γ radiator Straw tube 15

TRD in experiments? ( A. Andronic ALICE TRD ) 16

TR features X-ray TR has remarkable features: TR in X-ray region is extremely forward peaked within an angle of 1/γ Energy of TR photons are in X-ray region ( 2-40 kev ) Total TR Energy ETR is proportional to the 17 γ factor of the charged particle

Radiator Atlas spacer The theory of transition radiation predicts that the best radiator is a stack of regular foils: 20-30μ mylar foils and 200-300μ air gap. ATLAS use foils and spacer between foils to provide air gap. ZEUS and many other experiments use fleece radiators. Bottom picture shows FDC with fleece radiator in front 18

TRD with wire chambers ALICE TRD ZEUS 19

TR detection methods 1) Cluster counting method 2) Total energy deposition 3) de/dx along track (FADC) 20

TR absorption in Argon 21