Review of photo-sensor R&D for future water Cherenkov detectors NNN10 Dec

Similar documents
HAPD and Electronics Updates

The 20 inch MCP-PMT R&D in China

Review of High Quantum Efficiency Large Area Photomultiplier Tubes

The hybrid photon detectors for the LHCb-RICH counters

Photon detectors. J. Va vra SLAC

Photo Multipliers Tubes characterization for WA105 experiment. Chiara Lastoria TAE Benasque 07/09/2016

Liquid Xenon Scintillation Detector with UV-SiPM Readout for MEG Upgrade

Spatial Response of Photon Detectors used in the Focusing DIRC prototype

The TORCH PMT: A close packing, multi-anode, long life MCP-PMT for Cherenkov applications

Lifetime of MCP-PMTs

The field cage for a large TPC prototype

Large photocathode 20-inch PMT testing methods for the JUNO experiment

Very High QE bialkali PMTs

Lifetime of MCP-PMTs

Performance of the MCP-PMT for the Belle II TOP counter

TPC R&D by LCTPC. Organisation, results, plans. Jan Timmermans NIKHEF & DESY(2009) On behalf of the LCTPC Collaboration TILC09, Tsukuba

Production and Development status of MPPC

Application of Hamamatsu MPPC to T2K near neutrino detectors

A Review of Tracking Sessions

Experimental Astrophysics Group, Space Sciences Laboratory, 7 Gauss Way, University of California, Berkeley, CA 94720

arxiv: v1 [physics.ins-det] 1 Nov 2015

First evaluation of the prototype 19-modules camera for the Large Size Telescope of the CTA

Tracking Detector R&D at Cornell University and Purdue University

ILC Detector Work. Dan Peterson

Image Intensifier User Guide

Photonic Devices for Vehicle Evolution

Table. J. Va vra,

A very brief review of recent SiPM developments

Studies of large dynamic range silicon photomultipliers for the CMS HCAL upgrade

TPC R&D at Cornell and Purdue

with Low Cost and Low Material Budget

A prototype of fine granularity lead-scintillating fiber calorimeter with imaging read-out

A new Scintillating Fibre Tracker for LHCb experiment

Current status of Hamamatsu Si detectors mainly for High Energy Physics Experiments

The Time-of-Flight Detector for the ALICE experiment

MCP Upgrade: Transmission Line and Pore Importance

The Large TPC Prototype: Infrastructure/ Status/ Plans

Updates on the Central TOF System for the CLAS12 detector

Pseudospark-sourced Micro-sized Electron Beams for High Frequency klystron Applications

Henry Frisch For the LAPPD Collaboration

The Cornell/Purdue TPC

Status of GEM-based Digital Hadron Calorimetry

Performance of a DC GaAs photocathode gun for the Jefferson lab FEL

TitleLarge strip RPCs for the LEPS2 TOF. Author(s) Chu, M.-L.; Chang, W.-C.; Chen, J.- Equipment (2014), 766:

Hamamatsu R1584 PMT Modifications

A Cylindrical GEM Detector with Analog Readout for the BESIII Experiment. Gianluigi Cibinetto (INFN Ferrara) on behalf of the BESIIICGEM consortium

A pixel chip for tracking in ALICE and particle identification in LHCb

Sensors for precision timing HEP

SuperFRS GEM-TPC Development Status Report

In the tube collection there are several sensors designed for applications in some kinds of physics measurements or detection.

Scintillation Tile Hodoscope for the PANDA Barrel Time-Of-Flight Detector

TORCH a large-area detector for high resolution time-of-flight

arxiv:hep-ex/ v1 27 Nov 2003

ELECTRON OPTICS OF ST-X, ST-Y SERIES OF STREAK & FRAMING CAMERA TUBES

li, o p a f th ed lv o v ti, N sca reb g s In tio, F, Z stitu e tests o e O v o d a eters sin u i P r th e d est sezio tefa ectro lity stem l su

Studies of the performance of different Front-end systems for Flat-panel Multi-anode PMTs with CsI(Tl) Scintillator Arrays

SciFi A Large Scintillating Fibre Tracker for LHCb

Solid State Photon-Counters

Reading a GEM with a VLSI pixel ASIC used as a direct charge collecting anode. R.Bellazzini - INFN Pisa. Vienna February

Performance and aging of OPERA bakelite RPCs. A. Bertolin, R. Brugnera, F. Dal Corso, S. Dusini, A. Garfagnini, L. Stanco

RTPC 12 Simulation. Jixie Zhang Aug 2014

Towards mass production of MICROMEGAS (Purdue/3M) Jun Miyamoto, Ian Shipsey Purdue University

SPE analysis of high efficiency PMTs for the DEAP-3600 dark matter detector

INSTRUMENT CATHODE-RAY TUBE

Time Resolution Improvement of an Electromagnetic Calorimeter Based on Lead Tungstate Crystals

Operating Instructions for PMT Tube P3

Results on 0.7% X0 thick Pixel Modules for the ATLAS Detector.

PID summary J. Va vra

R&D plan for ILC(ILD) TPC in (LC TPC Collaboration)

Update on Mass Produced Micro Pattern Gas Detectors. Operation of GEMS in Negative Ion Gases (Purdue/Temple/WSU)

The CMS Detector Status and Prospects

PMT Gain & Resolution Measurements in High Magnetic Fields

TPC R&D, Tasks towards the Design of the ILC TPC

GENCOA Key Company Facts. GENCOA is a private limited company (Ltd) Founded 1995 by Dr Dermot Monaghan. Located in Liverpool, UK

Study of Timing and Efficiency Properties of Multi-Anode Photomultipliers

Review of the CMS muon detector system

THE TIMING COUNTER OF THE MEG EXPERIMENT: DESIGN AND COMMISSIONING (OR HOW TO BUILD YOUR OWN HIGH TIMING RESOLUTION DETECTOR )

Performance and Radioactivity Measurements of the PMTs for the LUX and LZ Dark Matter Experiments

New gas detectors for the PRISMA spectrometer focal plane

High Performance White OLEDs Technologies for Lighting

An extreme high resolution Timing Counter for the MEG Upgrade

High Brightness Injector Development and ERL Planning at Cornell. Charlie Sinclair Cornell University Laboratory for Elementary-Particle Physics

PoS(PhotoDet 2012)018

High ResolutionCross Strip Anodes for Photon Counting detectors

arxiv: v2 [physics.ins-det] 24 Mar 2015

Activities on FEL Development and Application at Kyoto University

16-element Si photodiode arrays

Review Report of The SACLA Detector Meeting

The Full Scale Prototype of the Cylindrical-GEM as Inner Tracker in Kloe2

CHAPTER 9. Actives Devices: Diodes, Transistors,Tubes

THE DIGITAL FLAT-PANEL X-RAY DETECTORS

MPPC (multi-pixel photon counter)

Nuclear Instruments and Methods in Physics Research A

VERY HIGH VOLTAGE PHOTOEMISSION ELECTRON GUNS*

Summary of recent photocathode studies

CAEN Tools for Discovery

High QE Photocathodes lifetime and dark current investigation

Psec-Resolution Time-of-Flight Detectors T979

Semiconductors Displays Semiconductor Manufacturing and Inspection Equipment Scientific Instruments

Small PMT design. ! Design Concept! Design Implementa6on! On site test report! Engineering Array Test Plan! Design status

Transcription:

Review of photo-sensor R&D for future water Cherenkov detectors NNN10 Dec 15 2010 Hiroyuki Sekiya ICRR, University of Tokyo Special Thanks T. Abe F. Tokanai, & T. Sumiyoshi Hamamatsu Photonics 1

Contents/Disclaimer Many activities aiming for larger/lower cost/mass-production Quick review of only below technologies Super Bi-Alkali /Ultra Bi-Alkali Hybrid Photo-Detector Gas Photo-Multiplier Micro-PMT 2

Do we need R&D? R3600-05 (The 20 inch PMT) is excellent. It provided reliable detectors and actual results. To keep the production quality of R3600-05, continues order to Hamamatsu is the best way. We had better order 100,000 R3600-05s as soon as possible in order to get next generation water Cherenkov detectors within several years.

Why do we R&D? Because we want better photon sensors with lower price in short delivery date! The key motivation is COST. Some strategies to reduce cost Fewer detector with better QE Larger photo-coverage with cheaper sensors Simple structure for short time/mass production etc.

Pessimistic conclusion Largest sensors cannot be applied to commercial market. Hamamatsu knows Novel prize does not help their sales. Hamamatsu knows After all, R3600-05 did not bring so much benefits to Hamamatsu. If we develop new sensors with them, cost/area may not decrease. It s completely up to them. However, actually, they are always willing to develop new sensors with us and they are excellent.

Super Bi-Alkali/Ultra Bi-Alkali

Definition: SBA/UBA Quantum efficiency γ:hν band gap valence band vacuum level electron affinity work function Fermi level Reflection loss Excitation efficiency Loss in the PC Extraction efficiency ν: frequency of the photon R: reflection coefficient k: total absorption coefficient Pν: excitation probability to vacuum level L: average deviating distance of the excited e - Ps: extraction probability from the surface SBA : reduction of the losses UBA : enhancement of the efficiencies

5 SBA PMT is available So far, UBA is available only for metal package PMTs transfer technology is required. PC is made separately from the tube and assembled Not cheaper at all.

Hybrid Photo-Detector(HPD) Hybrid car Ex) Engine + Motor Hybrid photo sensor Ex) Photo tube + Semiconductor Hybrid gain: Bombardment + Avalanche 13 HPD Engine motor TOYOTA PRIUS Photo tube (cathode) APD Hamamatsu HPD

HPD -operation principle- PMT Dynode 10 7 HPD APD 4500@20kV 30 Total hybrid gain 10 5

Concern? 20kV too high voltage? APD high dark current? P.E. collection efficiency reaches more than 95% (PMT: 70%) No increase in dark current after 1000h operation at 4mA Radiation hard.

Better than PMTs This implies HPD is not cheaper than PMT. We should not require everything to realize low cost??

More Hybrid may reduce total cost HPD+Electronics(A/D)+HV

Performance of the Hybrid HPD Analogue output Digital output 1 p.e. 0 p.e. 1p.e. 2 p.e. 2 p.e. 3 p.e.?

8 and 13 HPDs available in 2012 Hamamatsu will release in 2012

Gas Photo-Multiplier(GPM) A kind of Hybrid detectors Electron multiplication by gaseous avalanche. If combined with photocathode, very large flat-panel detectors can be realized with much lower cost/area. A weak point Strategy of Do not require everything F. Sauli Michigan University, Ann Arbor - May 23, 2002

GPM operation principle- Photocathode + Micro Pattern Gas Detectors TRANSMISSIVE PC photocathode Gas avalanche REFLECTIVE PC Combination of MPGDs Multi-stage amplification Total gain 10 5 High resolution imaging Possible High QE

Large Area MPGDs Very active R&D and actually in use! Rui de Oliveira MPGD2009 Micromegas with readout Kapton-GEM foil 100cmx30cm@CERN 150cmx50cm for T2K? TPC Mesh

Large Area MPGDs in Japan Very active R&D and actually in use! μ-pic with readout LCP-GEM foil 31cmx28cm@Kyoto 30cmx30cm for NEWAGE (Dark Matter Search)

MPGD2011 will be held in Kobe Aug 29 Sep 1 2011 2 nd International workshop on MPGD followed by RD51 collaboration meeting Followed by RD51 collaboration meeting (Non-EU hosts for the first time) International organizing committee: A.Cardini (INFN Cagliari), K.Desch (U.Bonn), Th Geralis (Demokritos Athens), I.Giomataris (CEA Saclay), T.Kawamoto (ICEPP Tokyo), A.Ochi (Kobe Univ), V.Polychronakos (BNL), A.Sharma (CERN), S.Uno (KEK), A.White (U.Texas Arlington), J.Wotschack (CERN), Z.Zhao (USTC China) Local organizing committee: J.Haba (KEK), H.Hamagaki (CNS), T.Kawamoto (ICEPP), A.Ochi (Kobe Univ.), H.Sekiya (ICRR), A.Sugiyama (Saga Univ.), A.Taketani (RIKEN), T.Tamagawa (RIKEN), T.Tanimori (Kyoto Univ.), S.Uno (KEK)

Feedback Problems in photon detection A.Breskin TIPP09@Tsukuba Ion and photon feedbacks Limit the stable high gain operation Many activities to overcome the feedbacks. Gating Ion defocusing by MHSP/COBRA Blind reflection 5 A. Breskin et al., T. Sumiyoshi et al., 1

2GEMs+μPIC with CsI PC Sekiya et al 10cm x 10cm Possibility without Hamamatsu So far, tested with UV sensitive CsI Low Ion feedback achieved! Ion Back Flow = Ic/Ia < 10-3 @ gas gain 10 5 Deuteron Lump TRANSMISSIVE CsI PC on MgF2 window 54mm REFLECTIVE CsI PC on Au coated LCP-GEM PC current Anode current 10cm

Imaging JINST 4 (2009) P11006 NIM (2010) doi:10.1016/j.nima.2010.06.114 With solid UV scintillators Can be applied to LAr/LXe Star 犬

Hamamatsu s GPM Bialkali PC + glass GEM(capillary plate) Prototype for R&D Pyrex glass GEM

TIPP09 in Tsukuba 25

QE in gas is lower The weak point- Trans-missive Photocathode QE~12% After evacuation, QE recovered to ~20%. Ne+CF 4 gas: 14% (Max@350nm) Ar+CF 4 gas :12% (Max@420nm) In vacuum ~20% In Ar+CF4 ~12%

Relative gain Long term stability QE maintains almost the same value after 581 days operations. Period (days)

Strong for Magnetic field Compensation coil for terrestrial B free!

Make it larger Hamamatsu established the production of large Pyrex grass GEM 10cm thickness diameter at entrance diameter at center pitch 300 mm 160 mm 124 mm 300 mm Made by a new production Method: Sandblasting

By 2012, they will conclude Towards large flat panel photo-sensor 100mm square Pyrex glass GEM compared with H8500D These are assembled in a ceramic vessel?

μ-pmt If we don t require the largeness Real low cost with real mass-production! MEMS(Micro Electro Mechanical Systems) technology realized μ-pmt PMT?, silicon detector? No assemble, completely automated process Photo cathode(sba) Glass base (window) Silicon base Dynode by micro etching technology 7mm Glass base 5mm

μ-pmt Prototype: 300 pieces on a 6 wafer Very uniform quality 20% Photo coverage possibility in future?? Typical output signal of prototype 2x2 sample

Conclusion There are many activities that can be applied to next generation large water Cherenkov detector. Hybrid is also trend in photo-sensors. The 20 PMT is still a candidate. SBA technology is already taken into new photosensors. HPD is the most plausible candidate. GPM can be a dark horse. Post-next generation large sensor?