NMI3 Meeting JRA8 MUON-S WP1: Fast Timing Detectors High Magnetic Field µsr Spectrometer Project at PSI Status Report

Similar documents
Novel scintillation detectors. A. Stoykov R. Scheuermann

TM-xx-xx-xx / Seite 2

High granularity scintillating fiber trackers based on Silicon Photomultiplier

Contents. The AMADEUS experiment at the DAFNE collider. The AMADEUS trigger. SiPM characterization and lab tests

SiPMs for solar neutrino detector? J. Kaspar, 6/10/14

LaBr 3 :Ce, the latest crystal for nuclear medicine

Performance of 8-stage Multianode Photomultipliers

Silicon Photo Multiplier SiPM. Lecture 13

5. Scintillation counters

Pixel hybrid photon detectors

5. Scintillation counters

The High-Voltage Monolithic Active Pixel Sensor for the Mu3e Experiment

Tutors Dominik Dannheim, Thibault Frisson (CERN, Geneva, Switzerland)

Silicon Photomultiplier

A Measurement of the Photon Detection Efficiency of Silicon Photomultipliers

Recent Development and Study of Silicon Solid State Photomultiplier (MRS Avalanche Photodetector)

Characterisation of SiPM Index :

Direct Measurement of Optical Cross-talk in Silicon Photomultipliers Using Light Emission Microscopy

Three advanced designs of avalanche micro-pixel photodiodes: their history of development, present status, Ziraddin (Zair) Sadygov

R & D for Aerogel RICH

Application of avalanche photodiodes as a readout for scintillator tile-fiber systems

CHAPTER 9 POSITION SENSITIVE PHOTOMULTIPLIER TUBES

PoS(PhotoDet 2012)058

LaBr 3 :Ce scintillation gamma camera prototype for X and gamma ray imaging

Scintillator/WLS Fiber Readout with Geiger-mode APD Arrays

AN ADVANCED STUDY OF SILICON PHOTOMULTIPLIER

Direct Measurement of Optical Cross-talk in Silicon Photomultipliers Using Light Emission Microscopy

Use of a Hybrid Photo Detector (HPD) in the MAGIC micro power LIDAR system

Study of Silicon Photomultipliers for Positron Emission Tomography (PET) Application

Silicon Carbide Solid-State Photomultiplier for UV Light Detection

P ILC A. Calcaterra (Resp.), L. Daniello (Tecn.), R. de Sangro, G. Finocchiaro, P. Patteri, M. Piccolo, M. Rama

Performance of the Hall D Tagger Microscope as a Function of Rate

Silicon Photomultipliers

High collection efficiency MCPs for photon counting detectors

Review of Solidstate Photomultiplier. Developments by CPTA & Photonique SA

Development of Photon Detectors at UC Davis Daniel Ferenc Eckart Lorenz Alvin Laille Physics Department, University of California Davis

Polarimetry Concept Based on Heavy Crystal Hadron Calorimeter

A new single channel readout for a hadronic calorimeter for ILC

AVALANCHE PHOTODIODES FOR THE CMS ELECTROMAGNETIC CALORIMETER

Attenuation length in strip scintillators. Jonathan Button, William McGrew, Y.-W. Lui, D. H. Youngblood

The (Speed and) Decay of Cosmic-Ray Muons

A BaF2 calorimeter for Mu2e-II

SCINTILLATOR / WLS FIBER OPTION FOR BABAR MUON DETECTOR UPGRADE

arxiv: v2 [physics.ins-det] 10 Jan 2014

Performance of the MCP-PMTs of the TOP counter in the first beam operation of the Belle II experiment

PMT tests at UMD. Vlasios Vasileiou Version st May 2006

Scintillation counter with MRS APD light readout

InGaAs SPAD BIOMEDICAL APPLICATION INDUSTRIAL APPLICATION ASTRONOMY APPLICATION QUANTUM APPLICATION

Silicon Photomultipliers. Dieter Renker

The Light Amplifier Concept

Technical review report on the ND280

Andrea WILMS GSI, Helmholtzzentrum für Schwerionenforschung, Darmstadt, Germany

Contents. Why waveform? Waveform digitizer : Domino Ring Sampler CEX Beam test autumn 04. Summary

A Novel Design of a High-Resolution Hodoscope for the Hall D Tagger Based on Scintillating Fibers

The Calice Analog Scintillator-Tile Hadronic Calorimeter Prototype

SiPMs as detectors of Cherenkov photons

Total Absorption Dual Readout Calorimetry R&D

The CMS Outer HCAL SiPM Upgrade.

Photon Detector with PbWO 4 Crystals and APD Readout

Design and Performance of the FAST Detector

Calibration of Scintillator Tiles with SiPM Readout

Characterizing a single photon detector

Mitigating high energy anomalous signals in the CMS barrel Electromagnetic Calorimeter

Highlights of Poster Session I: SiPMs

Solid-State Photomultiplier in CMOS Technology for Gamma-Ray Detection and Imaging Applications

1.1 The Muon Veto Detector (MUV)

SUPPLEMENTARY INFORMATION

SPMMicro. SPMMicro. Low Cost High Gain APD. Low Cost High Gain APD. Page 1

NIF Neutron Bang Time Detector Development on OMEGA

Stato del progetto RICH di LHCb. CSN1 Lecce, 24 settembre 2003

The detector system of the EPOS system

Scintillation Counters

A Study of Silicon Photomultiplier Sensor Prototypes for Readout of a Scintillating Fiber / Lead Sheet Barrel Calorimeter

Seminar. BELLE II Particle Identification Detector and readout system. Andrej Seljak advisor: Prof. Samo Korpar October 2010

CALICE AHCAL overview

Advancement in development of photomultipliers dedicated to new scintillators studies.

IRST SiPM characterizations and Application Studies

Time-of-flight PET with SiPM sensors on monolithic scintillation crystals Vinke, Ruud

Channel-Plate Photomultipliers

Extension of the MCP-PMT lifetime

Design and Simulation of N-Substrate Reverse Type Ingaasp/Inp Avalanche Photodiode

arxiv: v2 [physics.ins-det] 14 Jan 2009

PoS(PhotoDet 2012)016

Development of New Photosensors for Huge Detectors

GSPC detectors development for neutron reflectometry and SANS Instruments WP22 / Task 22.2

SINPHOS SINGLE PHOTON SPECTROMETER FOR BIOMEDICAL APPLICATION

Overview Full Featured Silicon Photomultiplier Module for OEM and Research Applications The is a solid state alternative to the Photomultiplier Tube (

Gas scintillation Glass GEM detector for high-resolution X-ray imaging and CT

arxiv: v2 [physics.ins-det] 17 Oct 2015

CMS Note Mailing address: CMS CERN, CH-1211 GENEVA 23, Switzerland

event physics experiments

MuLan Experiment Progress Report

Detectors for microscopy - CCDs, APDs and PMTs. Antonia Göhler. Nov 2014

The MUSE experiment. Technical Overview. Guy Ron (for the MUSE collaboration) Hebrew University of Jerusalem

InGaAs SPAD freerunning

Development of Large Area and of Position Sensitive Timing RPCs

TPC Readout with GEMs & Pixels

START as the detector of choice for large-scale muon triggering systems

the avalanche mode having a medium gain and in the Geiger mode with an operating voltage greater as the breakthrough voltage. The investigation descri

An Introduction to the Silicon Photomultiplier

Transcription:

NMI3 - Integrated Infrastructure Initiative for Neutron Scattering and Muon Spectroscopy NMI3 Meeting 26.-29.9.05 JRA8 MUON-S WP1: Fast Timing Detectors High Magnetic Field µsr Spectrometer Project at PSI Status Report R. Scheuermann & A. Stoykov Laboratory for Muon Spin Spectroscopy, Paul Scherrer Institut, Villigen, Switzerland

Outline PSI high-magnetic field project AMPDs properties Scintillating fiber module Muon beam profile monitor (µbpm) measurements in high magnetic fields Commercially available fast timing detectors tested Thin scintillators

PSI HMFµSR - Design Specifications Maximum magnetic field (TF): H max ~ 10 T Field homogeneity / stability: H /H 10-5 (over sample volume 10 10 2 mm 3 for typ. 4 hrs.) compact, max. length: max l 30 cm? split coil (warm bore, 100 mm) solenoid?

PSI HMFµSR Time Resolution μ +, E kin = 4.2 MeV TF: 90 spin rotation 100 time resolution: δt 300 ps (FWHM) a obs /a max [%] 80 60 40 55 % δt = 200 ps δt = 300 ps compact detector system: AMPDs? (Avalanche Microchannel Photodiodes) 20 0 LTF 3 δt = 400 ps δt = 1000 ps δt = 500 ps 0 5 10 15 20 B [T]

Problems / Challenges Magnet design: length, field homogeneity & long-term stability Stray field minimization (spin phase coherence) Muon phase space / momentum bite Muon beam collimation Detector system (fast & compact) Sample environment (incl. scintillators)

The real advantages of APDs: cheap (multi-segment detectors) compact insensitive to magnetic fields photodetector close to sample with best time resolution (High Magnetic Field Spectrometer) commercially available APDs: expensive, magnetic housing, OEM, new development necessary for dedicated devices: Protocol PSI JINR Dubna (24/11/2004): Joint Research in the field of Development of scintillation detectors on the base of new microchannel avalanche photodiodes (Z. Sadygov)

APD operation principle hν AMPD = n APD channels (micro-pixels) Geiger mode (saturation, U>U breakdown ): reduction of excess noise factor at high gain

Examples of some state-of-the-art APDs: a) RMD S1315 (13 x 13 mm 2 ); b) Hamamatsu S8148 (5 x 5 mm 2 ); c) Dubna R8 AMPDs (2.75 x 2.75 mm 2 and 0.75 x 0.75 mm 2 ).

AMPD type Dubna R8 (Z. Sadygov, JINR Dubna)

courtesy of Yu. Musienko (CERN)

(200 µm; M-counter: start signal) EJ- 230 (Pilot U), 1 1 mm 2, coupled to ZS-2 Readout from thin scintillators 1.0 0.8 1e e + µ + N / N max AMPD gain ~ 2 10 6 no amplifier!!! 0.6 0.4 0.2 0.0 0 100 200 300 400 Amplitude (mv) signals from µ + and e + well separated

EJ-230 specs: τ rise = 0.5 ns, τ fall = 1.5 ns Timing properties (ZS-2) 1.0 0.8 1e, τ r = 1.1 ns µ +, τ r = 1.3 ns A / A max 0.6 0.4 0.2 0.0 0 2 4 6 8 10 12 t (ns)

APD Hamamatsu S8148 on NE102A scintillator as positron detector: no problem to achieve standard time resolution 1 ns

Scintillating Fiber Detector Module Ch. Buehler (PSI) Gain: 250 Bandwidth: 250 MHz Rate capability: 3 10 6 µ + / s /channel

Scintillating Fiber Detector Module X: 5 ns Y: 5 mv X: 10 ns Y: 100 mv 1-electron (dark) signals Signals from 29 MeV/c muons in 1 1 mm 2 BCF-10 fiber

Scintillating Fiber Detector Module 1.0 0.8 Amplitude distributions A 1e 1.0 0.8 A µ N / N max 0.6 0.4 H = 0 T H = 4.8 T N / N max 0.6 0.4 H = 0 T H = 4.8 T 0.2 0.2 0.0 0.0 0.1 0.2 0.3 Amplitude (nv*s) 0.0 0 2 4 6 8 10 12 Amplitude (nv*s) 1-electron signals / muon signals in magnetic fields of zero and 4.8 T. The decrease (~10 %) of the signal amplitude at H = 4.8 T is due to the change of the amplifier performance in the magnetic field (confirmed by measurements using a pulser signal to feed the amplifier input)

Scintillating Fiber Detector Module 1.0 0.9 1.0 0.9 A / A 0 0.8 0.7 0.6 n 1 = n 1,0 + n (A / A 1e ) / N pix (1) 0.5 10 2 10 3 10 4 10 5 10 6 10 7 n (1/s) M / M 0 0.8 0.7 0.6 0.5 10 4 10 5 10 6 n 1 (1/s) Muon pulse amplitude A as a function of muon rate n (A 0 = amplitude at dark count rate n = 5 10 3 s -1 ) Dashed line: prediction of A(n) at higher rates, calculated based on eqs. (1) and (2). Dependence of the AMPD gain M on the rate per pixel of 1e-pulses. Dashed line: M / M 0 = 1 q ln (n 1 / n 1,0 ), (2) with n 1,0 = 2.7 10 3 s -1, q = 0.092.

Detector Development Muon beam profile monitor: A. Stoykov et al. [NIM A 550 (2005) 212] Muon beam profile measurement in center of ALC solenoid: AMPDs and preamps work fine in 5 T!

Beam Profile Measurements Variation of muon spot size on sample different trajectories of decay e + in high magnetic fields (spiraling), this affects the F-B asymmetry! Simulations (T. Lancaster, WP2) 0 T 1 T 2 T

Fast-Timing Detector Development Hybrid Avalanche Photodetector Hamamatsu R7110U-07: combination PMT+APD electrostatic focussing lost above 1 kg // axis: decrease of signal amplitude excellent timing properties (rise time): no change!

Fast-Timing Detector Development Multianode-MCP PMTs BURLE PLANACON TM 85001-501 4 channels good timing properties, but severe cross-talk, bulky, not user-friendly quantum efficiency collection efficiency 10% (PMT XP2020: 28%) insufficient gain: only 5 10 5

Fast-Timing Detector Development Multipixel HPD Hamamatsu R9503U-04-M064 8x8 pixels, 16x16 mm 2 eff. area (25 ksfr ) Tests planned 12/2005

Thin scintillators Study the light collection from thin plastic scintillators Motivation One of the most important issues in fast timing experiments is efficient collection of light from the scintillator to the photosensor (significant light losses might occur in the scintillator itself and in the light guides). Muon counters of µsr spectrometers are based on ~200 µm thick plastic scintillators. The number of reflections each photon undergo in a thin scintillator is very large and the quality of the scintillator strongly effects the light collection. Goal Find out the upper limit for the light collection from a thin 10 x 10 x 0.2 mm 3 scintillator via one of 10 x 0.2 mm 2 faces.

Monte-Carlo simulations based on the code: V.A.Baranov et.al., NIM A 374 (1996) 335 Number of photons 1000 800 600 400 200 Scintillator: n = 1.58, L (1/e) = 1400 mm Medium: n = 1.00028 (air) Light source: t = 0, center of scintillator Light collection: 45% 0 0.0 0.1 0.2 0.3 0.4 0.5 Time (ns) Time histogram for the photons collected from a 10 x 10 x 0.2 mm 3 plastic scintillator via one of the 10 x 0.2 mm 2 faces (absorbs all incident photons). About 45% of photons are collected within 0.2 ns.

Experimental setup LeCroy WavePro 960 DSO R1828-01, QE max =29% C1: test scintillator 10 x 10 x d mm 3, d ~ 0.2 mm; C2: BCF-10 scint. fiber (1 x 1 mm 2 ); Cu-filter: cuts off electrons with energies < 0.7 MeV.

sample n.10: BC-400 (230 µm) 1.0 1phe mip A mip / A 1phe = 22 0.8 N / N max 0.6 0.4 Amplitude distributions for one-photoelectron PMT signals (1phe) and signals from relativistic electrons (mip) passing through scintillator C1 (sample no.10: 230 µm BC-400). A 1phe -- the mean amplitude of 1phe-signals, measured by shining weak continuous light onto C1 (n ~ 10 5 s -1 >> n dark ); -- the most probable amplitude from relativistic electrons emitted by 90 Sr. A mip 0.2 0.0 A mip 0 10 20 30 Amplitude (pc)

(light output: 65% anthracene) mip: 10 000 photons / MeV (taken from: SGC-Brochure: Organic Scintillators)

Scintillators studied Scintillator LE, ph/mev QE, % N phe,max (200 µm) EJ-204 / BC-404 10400 26 108 EJ-230 9700 28 108 EJ-232 8400 27 90 EJ-212 / BC-400 10000 25 100 EJ-232Q / BC- 422Q (0.5%) 2900 27 31

N phe = A mip /A 1phe 200 / d CE = N phe / N phe,max measured number of photoelectrons per mip scaled to 200 µm efficiency for the light collection N phe,max = (de/dx) mip ρ 200 µm LE QE (de/dx) mip = 2 MeV (cm 2 /g), ρ = 1 g / cm 3, LE: QE: light yield of the scintillator quantum efficiency of the PMT averaged over the emission spectrum of the scintillator The quality of the samples was estimated visually with marks from 1 (poor) to 5 (excellent) -- the table gives the group characteristic quality estimates. * The samples were obtained from Eljen cut to the specified dimensions. No microcracks are seen in the scintillator bulk but the larger faces look wavy. Smaller faces were not polished and look rugged. ** The samples were cut from scintillator sheets using a diamond saw. Microcracks appeared due to pressing the scintillator when cutting. *** The samples were cut from scintillator sheets. The smaller faces were hand-polished. Microcracks appeared due to pressing the scintillator when polishing.

Nn Sample Scint. type d, µm Sample quality faces 10x10mm + bulk faces 10xd mm N phe CE, % 1 EJ-204 190 15.2 14.1 2 3 EJ-230 EJ-232 200 160 4.5* 1 12.3 12.5 11.4 13.9 4 EJ-232Q 180 4.4 14.2 5 BC-400 230 12.3 12.3 6 BC-422 210 3** 2.5 3.7 4.1 7 BC-422Q 250 3.2 10.3 8 BC-422 210 9.3 10.3 9 10 BC-422Q BC-400 250 230 3.5*** 4.5 4.0 18.9 12.9 18.9 11 EJ-212 300 18.9 18.9

Summary Thin scintillators 1) Very high values (up to 20% ) for the light collection efficiency (CE) were obtained with thin 10 x 10 x d mm 3 (d ~ 0.2 mm) plastic scintillators. The maximum possible efficiency of 45% predicted in Monte-Carlo simulations is proven to be realistic. 2) The quality of a scintillator has a strong effect on the light collection. Fine polishing of the smaller 10 x 0.2 mm 2 faces is important (simulations show that full absorption on the three 10 x 0.2 mm 2 faces leads to a decrease by a factor of 4 in CE ). 3) With CE > 20% the development of a prototype of a magnetic field insensitive detector based on a fast plastic scintillator and today available AMPDs (area 1 x 1 mm 2, PDE = 3 5% at 380 nm) becomes feasible.

Towards fast timing in high magnetic fields: a concept of an AMPD based scintillation detector Expected performance (with ZS-2mp) LC ~ 20% (200 µm), 20 40% (1 mm) K g = 0.5 (geometry factor) PDE (ZS-2mp) = 3 5% for EJ-230 EJ-230 (200 µm): 12 phe / µ + (29 MeV/c) EJ-230 (1mm): 6 12 phe / e + (mip) Sufficient for feasibility tests!!!

Summary Fast-timing detectors available on the market: tested ( & rejected...) fast-timing spectrometer requires special development: AMPDs next generation of AMPDs: larger area, larger gain, increased sensitivity below 400 nm, AMPD array for readout of thin scintillators can be used in future musr spectrometers Collaboration PSI-JINR (Z. Sadygov, V. Zhuk): AMPD development / light guides & fibers Full spectrometer simulation (detector arrangements, secondary beam,...): WP2 PSI electronics development (?): fast preamps (matching AMPD impedance, 50 Ω) with on-board discriminators