? Simulation. of PICASSO detectors. Marie-Hélène Genest - Université de Montréal

Similar documents
PoS(idm2008)010. The PICASSO Dark Matter Search Project. A. Davour for the PICASSO collaboration Queen s University

Dark Matter Search With The PICASSO Experiment

Constraints on Low-Mass WIMPs from PICASSO. Carsten B. Krauss University of Alberta for the PICASSO Collaboration IDM Chicago, July

The Picasso Experiment Plans and Results Carsten Krauss Queen s University

arxiv: v2 [physics.ins-det] 23 Sep 2008

Backgrounds in PICO. Eric Vázquez Jáuregui SNOLAB. AARM Meeting Fermilab; Batavia IL, USA; March 19, 2014

COUPP: Bubble Chambers for Dark Matter Detection

Deep Underground Labs and the Search for Dark Matter

Improved Spin Dependent Limits from the PICASSO Dark Matter Search Experiment

Bubble Chambers for Direct Dark Matter Searches in COUPP

Calculations of Neutron Yield and Gamma Rays Intensity by GEANT4

Toward a next-generation dark matter search with the PICO-40L bubble chamber. Scott Fallows TAUP2017 Laurentian University 24 July 2017

Search for low-mass WIMPs with Spherical Detectors : NEWS-LSM and NEWS-SNO

COUPP. Carbon and Fluorine Recoil Thresholds. Alan Robinson July 26, 2012 IDM 2012, Chicago, IL

Spin dependent limits on WIMP-proton scattering cross-section from PICASSO. Sujeewa Kumaratunga for the PICASSO collaboration

This paper should be understood as an extended version of a talk given at the

CALIBRATION OF SCINTILLATION DETECTORS USING A DT GENERATOR Jarrod D. Edwards, Sara A. Pozzi, and John T. Mihalczo

Low Energy Neutron Verification in GEANT4: to 4.9.5

Introduction to Radiological Sciences Neutron Detectors. Theory of operation. Types of detectors Source calibration Survey for Dose

CHARGED PARTICLE INTERACTIONS

State the main interaction when an alpha particle is scattered by a gold nucleus

Neutron Transport Calculations Using Monte-Carlo Methods. Sean Lourette Fairport High School Advisor: Christian Stoeckl

Outline. Dark Matter Physics at SNOLAB: And Future Prospects. Overview of SNOLAB DarkMatter Program. Status of Current Experiments

Measurements of liquid xenon s response to low-energy particle interactions

Simulations, backgrounds, and uncertainties in PICO-2L. Alan Robinson May 20, 2015 AARM, Rapid City South Dakota

Rare Event Searches and the Underground

Measurement of nuclear recoil responses of NaI(Tl) crystal for dark matter search

in Cross-Section Data

Results from 730 kg days of the CRESST-II Dark Matter Search

arxiv: v1 [physics.ins-det] 26 Sep 2018

BubXe: a liquid xenon bubble chamber for Dark Matter detection!

Dark Ma'er Search Results from PICO- 60 and PICO- 2L

arxiv: v1 [physics.ins-det] 3 Feb 2011

THE ACTIVE PERSONNEL DOSIMETER - APFEL ENTERPRISES SUPERHEATED DROP DETECTOR*

AnswerIT! Atoms and isotopes. Structure of an atom Mass number, atomic number and isotopes Development of the model of the atom.

Ionizing radiation produces tracks defined by the geometry of the energy deposition events. An incident ion loses energy by Coulombic interactions

Search for Low Energy Events with CUORE-0 and CUORE

RESPONSE FUNCTION STUDY FOR ENERGY TO LIGHT CONVERSION IN ORGANIC LIQUID SCINTILLATORS

EEE4106Z Radiation Interactions & Detection

Chapter V: Cavity theories

XMASS: a large single-phase liquid-xenon detector

Miguel Ardid Universitat Politècnica de València SUSY 2013

PoS(ICHEP2016)474. SoLid: Search for Oscillations with a Lithium-6 Detector at the SCK CEN BR2 reactor

Physics of Radiotherapy. Lecture II: Interaction of Ionizing Radiation With Matter

INTRODUCTION TO IONIZING RADIATION (Attix Chapter 1 p. 1-5)

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

DarkSide new results and prospects

Nuclear Recoil Scintillation and Ionization Yields in Liquid Xenon

Investigation of pulse shapes and time constants for NaI scintillation pulses produced by low energy electrons from beta decay

Airo International Research Journal October, 2015 Volume VI, ISSN:

DARK MATTER SEARCH AT BOULBY MINE

The 46g BGO bolometer

DETECTORS. I. Charged Particle Detectors

Unit 6 Modern Physics

Mitchell Institute Neutrino Experiment at a Reactor (MINER) Status and Physics Reach

Energy calibration of the threshold of Medipix for ATLAS

PHY326/426 Dark Matter and the Universe. Dr. Vitaly Kudryavtsev F9b, Tel.:

Outline. Chapter 6 The Basic Interactions between Photons and Charged Particles with Matter. Photon interactions. Photoelectric effect

Neutron Backscattering Technique for the Detection of Buried Organic Objects. Angel Humberto Cruz Silva

Electromagnetic and hadronic showers development. G. Gaudio, M. Livan The Art of Calorimetry Lecture II

Update on Calibration Studies of the Canadian High-Energy Neutron Spectrometry System (CHENSS)

The Versatile Array of Neutron Detectors at Low Energy

Alpha-Energies of different sources with Multi Channel Analyzer

Detection and measurement of gamma-radiation by gammaspectroscopy

Detector Simulation. Mihaly Novak CERN PH/SFT

B. Rouben McMaster University Course EP 4D03/6D03 Nuclear Reactor Analysis (Reactor Physics) 2015 Sept.-Dec.

Interaction of charged particles and photons with matter

Neutron Capture Experiments with DANCE

Radiation Quantities and Units

A MONTE CARLO SIMULATION OF COMPTON SUPPRESSION FOR NEUTRON ACTIVATION ANALYSIS. Joshua Frye Adviser Chris Grant 8/24/2012 ABSTRACT

MCRT L8: Neutron Transport

COMET muon conversion experiment in J-PARC

Simulation of low energy nuclear recoils using Geant4

There are 82 protons in a lead nucleus. Why doesn t the lead nucleus burst apart?

David Reyna Belkis Cabrera-Palmer AAP2010, Japan

arxiv:physics/ v1 3 Aug 2006

Quantitative Assessment of Scattering Contributions in MeV-Industrial X-ray Computed Tomography

Chapter 3 Radioactivity

Researchers at the University of Missouri-Columbia have designed a triple crystal

Status of Dark Matter Detection Experiments

Alpha-energies of different sources with Multi Channel Analyzer (Item No.: P )

Interaction of Ionizing Radiation with Matter

Outline. Radiation Interactions. Spurs, Blobs and Short Tracks. Introduction. Radiation Interactions 1

COUPP500: a 500kg Bubble Chamber for Dark Matter Detection

Interactions with Matter Photons, Electrons and Neutrons

Search for Dark Matter with Liquid Argon and Pulse Shape Discrimination

Today, I will present the first of two lectures on neutron interactions.

Chapter Four (Interaction of Radiation with Matter)

Direct measurement of the 17 O(p,α) 14 N reaction at energies of astrophysical interest at LUNA

Status of KIMS-NaI experiment

Arjan Plompen. Measurements of sodium inelastic scattering and deuterium elastic scattering

Physics of Particle Beams. Hsiao-Ming Lu, Ph.D., Jay Flanz, Ph.D., Harald Paganetti, Ph.D. Massachusetts General Hospital Harvard Medical School

STUDY ON THE ENERGY RESPONSE OF PLASTIC SCINTILLATION DETECTOR TO MEV NEUTRONS ABSTRACT

Detection of explosives and fissile material based on neutron generators, survey of techniques and methods. M. Bruggeman

Calibration of EJ-301, a Liquid Scintillator

Down-to-earth searches for cosmological dark matter

CHANNELING IN DIRECT DARK MATTER DETECTION

Study well-shaped germanium detectors for lowbackground

STATUS OF THE CALIBRATION

BETA-RAY SPECTROMETER

Transcription:

? Simulation of PICASSO detectors Marie-Hélène Genest - Université de Montréal On behalf of the PICASSO Collaboration (Montréal, Queen s, Indiana South Bend, Prague) 2006

Simulation of PICASSO detectors M-H.Genest 2 PICASSO detectors Required simulation parameters: - Detector geometry - Droplet distribution / active mass Geant4 - Physical processes - Threshold energy Analysis - Probability factor Results Future studies

PICASSO detectors M-H.Genest 3 PICASSO: Project In CAnada to Search for Supersymmetric Objects Pressure Cold dark matter search experiment based on superheated droplet technique Detector: Superheated droplets dispersed in a polymerized gel Passing through the detector a particle loses energy. If this deposited energy is sufficient, a phase transition occurs. A droplet bursts, creating an acoustic wave detected by piezo-electric transducers.

For a phase transition to occur: E de dx R crit and E min being defined as : Detection principle: Seitz theory ( Rcrit ) min kin, particle E How much is sufficient energy deposition? M-H.Genest 4 R crit 2γ ( T ) ε P( T ) E min 3 16π γ ( T ) 3 η ( P( T )) γ(t) is the droplet s surface tension: γ ( T ) = 2.1( T C T ) [ M / ρ( T )] 2/ 3 2 T = temperature of operation T C = critical temperature M = molecular mass ρ= density ε= critical length factor P(T) = difference between the vapour pressure and the applied pressure η= efficiency

What is needed Geant 4 1 Geometry (examples) M-H.Genest 5 The 1 st generation: 10 ml The last generation: 4.5L 4.5L detector in a temperature and pressure control box All materials have to be defined in their chemical composition and density.

What is needed Geant 4 2 Droplet distribution M-H.Genest 6 Microscope pictures are used to measure the droplet diameters 1L detectors 10 ml detectors Important in the alpha particle response amplitude

What is needed Geant 4 3 Physical processes M-H.Genest 7 Elastic/inelastic neutron scattering considered for all nuclei in all physical volumes Cross sections taken from ENDF/B-VI librairies Low energy ionization energy loss for nuclei Nuclear stopping power model : ICRU_R49 Electronic stopping power model: SRIM2000p

Output information analysis M-H.Genest 8 When a particle enters in a droplet, the output file is updated. This file contains, for all events: The event number The event position inside the detector The particle or nucleus ID (via a code system) The particle s kinetic energy The energy deposited within a step along the path The step length This information is used in the analysis code to determine the response according to Seitz theory. Is the energy deposited within a critical length by each particle going through a droplet enough to form a bubble?

What is needed - Analysis 4 Threshold energy M-H.Genest 9 The neutron threshold energy as a function of temperature has been measured with monoenergetic neutron beams 4A (1 + A) E min = E 2 th, n The neutron threshold energy is converted in a minimal energy deposition in the superheated liquid (C 4 F 10 ) by considering a maximal nucleus recoil after a neutron-nucleus scattering.

What is needed Analysis 5 Probability factor M-H.Genest 10 Even above the threshold energy, the deposited energy is not always efficient in triggering a phase transition. The probability of a droplet bursting as a function of the energy deposition was adjusted to the detector response for three different temperatures (10,15 and 20 C) and is given by: Counting rate (N/(n*cm 2 )) Neutron energy (MeV)

Results: monoenergetic neutrons M-H.Genest 11 Count rate (arb.units) Yellow band: simulation Red dots: experimental data Count rate (arb.units) 400 kev 200 kev Temperature ( C) Temperature ( C) First simulations: 10 ml detectors

Results: AcBe neutron source M-H.Genest 12 Experimental points Active mass (g) Simulation/measure comparison allows the detector s active mass determination Temperature ( C) AcBe source simulation Actinium α emitter Beryllium 9 Be(α,n) 12 C E prob = 4.6 MeV E max = 12 MeV Activity: 1.4x10 5 n/s

Results: alpha particle study M-H.Genest 13 ε ( events α 1 ) 0.035 0.03 0.025 0.02 0.015 0.01 r=10µm r=15µm r=30µm r=40µm r=80µm The response varies like (R droplet ) -1 0.005 0 10 12 14 16 18 20 22 24 26 28 30 32 34 36 38 40 42 Temperature ( C) Between 25 and 50 C the alpha response curve shape TheDifferent greater the contaminants droplet s radius, (here, the smaller the alpha is unchanged for different droplet distributions. 241 Am and 238 U): response same for response the sameshape active mass (geometrical purification)

Results: alpha particles M-H.Genest 14 Response curve of 238 U-spiked detector

Preliminary results: gamma response M-H.Genest 15 10 ml No complete simulation: The response shape is understood as resulting from the energy spectrum of the delta-ray electrons emitted along the gamma-ray path

Studies for TDR: Neutron shielding M-H.Genest 16 10 1 Fission neutrons in the mine 10 0 Fluence ( n / cm 2 ) 10 1 10 2 10 3 10 4 10 5 Neutrons going through the water shielding 10 6 10 4 10 2 10 0 10 2 Neutron energy (MeV) Shielding: 30 cm water cubes placed around the experimental set-up

Studies for TDR: Neutron shielding M-H.Genest 17 The internal background dominates neutralino predicted response (for different cross sections and M χ = 50 GeVc -2 ) Detector response to the neutrons going through the shielding Internal background expected (alpha contamination)

Future prospects M-H.Genest 18 Low energy monoenergetic neutron beam: measurements and simulation 4.5L 226 Ra-spiked detector simulation(experimental results coming soon) Multiple neutron interactions for a 32-detector setup (possible discrimination) Measurement of the gamma response for 4.5L detectors and complete gamma simulation!

Other PICASSO talks at ACP! M-H.Genest 19 Here, today: 16:45 Razvan Gornea New Improved Phase of PICASSO Installation at SNOLAB 17:00 Ken Clark Analysis of PICASSO-II Data Wednesday: Instrumentation for Particle Physics 10:00 François Aubin Event Localisation in PICASSO Detectors 10:15 Patrick Doane Improved Fabrication Method of PICASSO Detectors Non-Acclerator Particle Physics 14:45 Ubi Wichoski Results and Status of the PICASSO Experiment

Geant4 http://geant4.web.cern.ch/ M-H.Genest 20 Geant4 is a toolbox for the passage of particles through matter Geant4 has been developped by RD44, an international collaboration of a hundred scientists working on more than 10 experiments (Europe, Russia, Japan, Canada and United-States). Geant4 gives tools for all simulation aspects: geometry, tracking, detector response, visualization, user interface A large number of physical processes describing the different particle-matter interactions for a wide energy range is available. For many processes, different models are available.

Extra! M-H.Genest 21 The detector calibration constant obtained by simulation agrees with the other methods (microscopes, weighting )

Geant4 what is needed M-H.Genest 22 Detector : Geometry (container, gel, droplets) Chemical composition of all parts Density of the materials Particles: Physical processes needed Particles to generate (particle ID, energy,vertex) Tracking: The tracking is performed step by step for all primaries and secondaries (cuts can be applied) The output information for each event has to be defined The analysis code (detector s response) could be implemented here, but an external code allows the possibility to play with the response parameters without having to re-generate events.

Analysis code: detector s response M-H.Genest 23 The Geant4 output file is analyzed: For each temperature, the code calculates: The threshold energy The critical radius within which the minimal energy must be deposited For all particles going through droplets, the maximal energy deposited within the critical radius The code then compares, for each particle in the output file, the maximal deposited energy and the threshold energy, using the probability function to determine whether a phase transition occurs or not The number of bubbles created is saved and the temperature is incremented