Digital Signal Processing for Complete Spectroscopy of Rotating Nuclei

Similar documents
Spectroscopy of fission fragments using prompt-delayed coincidence technique

Recent results from digital INGA at BARC TIFR Pelletron Linac Facility and future plans

Exploring the Structure of Cold and Warm Nuclei Using Particle Accelerators in India

Frontiers in Gamma Ray Spectroscopy FIG18

Fission fragment mass distributions via prompt γ -ray spectroscopy

TIGRESS Auxiliary Detectors

Status & Future for In-Beam Spectrometers for Tagging at JYFL

Gamma-ray spectroscopy I

Chapter 6. Summary and Conclusions

Nuclear Lifetimes. = (Eq. 1) (Eq. 2)

5 th ASRC International Workshop, 14 th -16 th March 2012

Photofission of 238-U Nuclei

Fast-Timing with LaBr 3 :Ce Detectors and the Half-life of the I π = 4 Intruder State in 34 P

Antimagnetic Rotation in Cd isotopes

FARCOS Femtoscope Array for Correlations & Spectroscopy

Studies involving discrete spectroscopy. Studies involving total absorption or calorimetry

Nuclear structure and Indian Clover array

Status of the TRACE array

High-spin studies and nuclear structure in three semi-magic regions of the nuclide chart High-seniority states in Sn isotopes

A Comparison between Channel Selections in Heavy Ion Reactions

Magnetic Separator for light RIB production

Compton suppression spectrometry

Study of Isospin simmetry using the PARIS detector. Alice Mentana

Probing neutron-rich isotopes around doubly closed-shell 132 Sn and doubly mid-shell 170 Dy by combined β-γ and isomer spectroscopy.

Status of the magnetic spectrometer PRISMA

First day Programme (October 23, 2018)

First results from the AGATA Demonstrator. Francesco Recchia Università di Padova

The Generalized Centroid Difference Method

C.J. Lister Argonne National Laboratory

ISOLDE Decay Station: Year one and near future physics program. M. Madurga

Transfer reactions to probe structure of weakly bound 6 He, 7 Li around the Coulomb barrier. Aradhana Shrivastava Bhabha Atomic Research Centre, India

Sunday Monday Thursday. Friday

Detection of γ-rays from nuclear decay: 0.1 < E γ < 20 MeV

Experimental Techniques and Methods

Investigation of Pygmy Dipole Resonance in neutron rich exotic nuclei

arxiv: v1 [physics.ins-det] 17 May 2017

Isospin symmetry breaking in mirror nuclei. Experimental and theoretical methods

Quality Assurance. Purity control. Polycrystalline Ingots

Dedicated Arrays: MEDEA GDR studies (E γ = MeV) Highly excited CN E*~ MeV, 4 T 8 MeV

Collective Excitations in Exotic Nuclei

Alpha particle scintillation detector based on micro pixel avalanche photodiode and LYSO crystal

D1. TASCA Focal Plane Detector Setup (Physics) - first mounting and detector tests

Gamma-ray spectroscopy II

Nuclear Spectroscopy I

Low-spin structure of 210 Bi

Figure 1. Decay Scheme for 60Co

Fusion reactions involving radioactive beams at GANIL.

Digital Gamma-ray Spectroscopy & Imaging with Semiconductor detectors Frontiers of gamma-ray spectroscopy

Band Structure of nuclei in Deformed HartreeFock and Angular Momentum Projection theory. C. R. Praharaj Institute of Physics Bhubaneswar.

Charged particles detectors Arrays (1)

A NEW GENERATION OF GAMMA-RAY TELESCOPE

arxiv: v3 [nucl-ex] 12 Jan 2012

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

Investigation of fast neutron spectroscopy capability of 7 Li and 6. Li enriched CLYC scintillator for nuclear physics experiments

Radioactivity at the limits of nuclear existence

Spectroscopy of light exotic nuclei using resonance scattering in inverse kinematics.

Alpha-Gamma discrimination by Pulse Shape in LaBr 3 :Ce and LaCl 3 :Ce

Status and perspectives of the GANIL Campaign ACC meeting - Venice

Single Channel Beta-Gamma Coincidence Detection of Radioactive Xenon Using Digital Pulse Shape Analysis of Phoswich Detector Signals

THE USE OF GE DETECTORS FOR (N,XN) CROSS-SECTION MEASUREMENTS AT INTENSE AND LOW FREQUENCY PULSED NEUTRON BEAMS. Abstract

3. Perturbed Angular Correlation Spectroscopy

The Versatile Array of Neutron Detectors at Low Energy

FAIR. Reiner Krücken for the NUSTAR collaboration

AGATA campaigns at GANIL and future plans. Colloque du GANIL 2017

SURROGATE REACTIONS. An overview of papers by Jason Burke from LLNL

Nuclear Physics and imaging in Medical, Security and Environmental applications

Experience and first results of. LIA COSMA January 2017 Magurele, Bucarest

Recoil Polarisation Measurements in Meson Photoproduction

HiRA: Science and Design Considerations

Introduction to Environmental Measurement Techniques Radioactivity. Dana Pittauer 1of 48

ORTEC AN34 Experiment 10 Compton Scattering

The Ring Branch. Nuclear Reactions at. Mass- and Lifetime Measurements. off Exotic Nuclei. Internal Targets. Electron and p. Experiments: Scattering

RITU and the GREAT Spectrometer

Detection and measurement of gamma-radiation by gammaspectroscopy

Extreme Light Infrastructure - Nuclear Physics ELI - NP

Scintillation Detector

* * TASCA in Small Image Mode Spectroscopy

EVOLUTION OF SHELL STRUCTURE

First results with PARIS array

Going beyond the traditional nuclear shell model with the study of neutron-rich (radioactive) light nuclei

What do we measure, and how do we measure it?

A gamma-gamma coincidence spectrometer for nuclear attribution and safeguard applications

Radiative Capture Reaction

Descriptions of triaxial band structures in 133 La

The Nuclear Many-Body problem. Lecture 3

Physics with Exotic Nuclei

Silvia M. Lenzi University of Padova and INFN. Silvia Lenzi, 10th Int. Spring Seminar on Nuclear Physics, Vietri sul Mare, May 21-25, 2010

The NArCos project (Neutron ARray for Correlation Studies)

ARTICLE IN PRESS. Nuclear Instruments and Methods in Physics Research A

Coulomb Breakup as a novel spectroscopic tool to probe directly the quantum numbers of valence nucleon of the exotic nuclei

Dipole Response of Exotic Nuclei and Symmetry Energy Experiments at the LAND R 3 B Setup

Nuclear Physics and Astrophysics

Scintillators for photon detection at at medium energies

Future gamma-ray spectroscopic experiment (J-PARC E63) on 4 ΛH

Recent results from the ISOFAZIA experiment

The Advanced Gamma Ray Tracking Array AGATA

Charged particle detection in GE6 To stop high energy particles need large thickness of Germanium (GE6 has ~13 cm) Charged particle detection in Ge

The Jefferson Lab 12 GeV Program

SCI-O11. Design of a Compton Spectrometer Experiment for Studying Electron Response of a Scintillator

New Trends in the Nuclear Shell Structure O. Sorlin GANIL Caen

Transcription:

Digital Signal Processing for Complete Spectroscopy of Rotating Nuclei (with Large Compton Suppressed Clover Array) RUDRAJYOTI PALIT Dept. of NUCLEAR AND ATOMIC Physics TIFR 1

Outline 1. Scope of gamma spectroscopy for nuclear structure 2. Large Array of Detectors 3: Why digital? 4: INGA array at Pelletron LINAC facility 5: Application of these techniques in medical imaging 2

Outline 1. Scope of gamma spectroscopy for nuclear structure Where is our field of nuclear structure going? What is the role of gamma spectroscopy? With few examples from previous experiments 2. Large Array of Detectors 3: Why digital? 4: INGA array at Pelletron LINAC facility 5: Application of these techniques in medical imaging 3

NUclear STructure and Reactions Sub femto Origin of NN-interaction Higher body forces HI Accelerators Detectors/Medical imaging Connecting to QCD Size 10-15 m Physics of nuclei (moving towards quantitative science) Quantum many body dynamics Condensed matter, Cold atom, Nuclear astrophysics Energy generation in stars Origin of elements Nature of neutron rich matter 4

NUclear STructure Astrophysics and Reactions What are the limits for existence of nuclei? Where are the proton and neutron drip lines situated? Where does the nuclear chart end? How does the nuclear force depend on varying proton-to-neutron ratios? What is the isospin dependence of the spin-orbit force? How does shell structure change far away from stability? How to explain collective phenomena from individual motion? What are the phases, relevant degrees of freedom, and symmetries of the nuclear many-body system? Ex How are complex nuclei built from their basic constituents? What is the effective nucleon-nucleon interaction? How does QCD constrain its parameters? J Which are the nuclei relevant for astrophysical processes and what are their properties? What is the origin of the heavy elements? N-Z 5

Low energy nuclear excitations are due to Single Particle Excitations Rotations Coupling between the simple modes creates interesting pattern & provide shape informations Vibrations TIFR, ASET Colloquium 2011 6

Non-collective Collective Energy scale of different modes comparable rich interplay 7

How to produce the excited states? 8

How to Identify & Characterize them? Identify the residue in a spectrometer Measure the p,α,n multiplicity Gamma coincidence, correlation & polarization measurements: Excitation energy (E*), Spin (J), Parity (π ) Lifetime measurement by transition strength (wave function overlap) 9

What have we studied with the array @TIFR up to now? A~ 130 Magnetic & chiral rotation, o Coupling of gamma bands with qp o Octupole correlations o Shape evolution in transitional nuclei o E(5) symmetry o A~ 80 Shape coexistence Evolution, np-pairing CFusion & ICFusion with projectiles having alpha-cluster state, Mass distribution in fission, Decay of heavy nuclei, e.g., 244Bk A~ 110 Shell structure & isomer Magnetic & antimagnetic rotation, Degenerate dipole bands A~ 35 High spin structure of neutron rich isotopes 10 http://www.tifr.res.in/~nsg

Complete and incomplete fusion cross-sections in 9 Be+124Sn with particle-gamma coincidence set-up Inconsistence in 9Be fusion suppression was resolved. High efficiency charged particle and gamma set-up for other channels e.g., ICF, transfer study. Alpha spectrum Forward Backward 11 V. Parkar, R. Palit, et al. PRC (2010).

Octupole Correlations in 131Cs Opposite parity, l = 3 orbitals near Fermi surface -ve +ve Weak E1 transitions between πd5/2 and πh11/2 bands in 131Cs has been observed. (0.3% of the strong E2 transitions.) E1 Low Ω indicates highly localized wave functions thereby enhancing large octupole interaction matrix. B(E1) ~ 6.0 x 10-5 W.u. Comparable to Ba & Xe isotopes. S. Sihotra, R. Palit, et. al. PRC78 (2008). πg7/2 πd5/2 πh11/2 12

Magnetic & Antimagnetic Rotation Anti-Ferromagnet Ferromagnet ħω B(M1) decreasing with freq B(E2) decreasing with spin Magnetic rotor Antimagnetic rotor 13

References Results Spectroscopy of Transitional Nuclei in A ~ 130 PRC 76, 014306 (2007), PRC 78, 034313 (2008) PRC 81, 067304 (2010) Gamma vibrations & its coupling Nucl Phys. A 824, 58(2009) Degenerate dipole bands & chirality PRC 79, 067304 (2009), EPJ A 43, 45 (2010), NPA 834, 81c (2010) Reactions for population high spin states in transitional nuclei PRC 82, 054601 (2010) INGA details & DSP AIP, March (2011) 14

Outline 1. Scope of gamma spectroscopy for nuclear structure 2. Large Array of Detectors Why do we need it? Basic configurations & coupling with other Ancillary detectors 3: Why digital? 4: INGA array at Pelletron LINAC facility 5: Application of these techniques in medical imaging 15

Decay spectroscopy Single detector 1960.. HI induced reaction Small array 1980.. What do we need for investigation of rotating nuclei? HI induced reaction Large array, ancillary detectors, 1990 2010 Collective rotation Interplay between collective and sp. degrees of freedom 3 Exotic high spin phenomena arising TIFR, ASET Colloquium 2011 16 from coupling of different shapes, spinning nucleons and weak yields

Large Gamma Arrays based on Compton Suppressed Spectrometers EUROBALL Ge Detectors within India GAMMASPHERE ε 10 5 % ( Mγ =1 Mγ =30) 17

INGA campaigns at different accelerator facilities INGA01 INGA03 INGA05 singa07-8 INGA08-9 INGA10-11 TIFR NSC VECC TIFR IUAC TIFR 18

Typical requirement for the setup 19

Ancillary detectors for Detection of Evaporation Particles using pulse shape analysis 2-dim plot of zero-crossover & ratio (PHS/PHL): CsI(Tl) CPDA for charged particle tagging Neutron Detector Array @ TIFR Radiation Protection Dosimetry 110, 219 (2004) 20 for neutron tagging

Neutron Multiplicity Filter R.Palit, et al, NIM 443, 386 21

Charged particle array for identification of residual nuclei S.D. Paul, et al. PRC (1995) 22

Clover detectors in INGA Eurisys N-type Size per crystal: 50x50x70mm3 Relative eff. : per crystal: 20% Add-back (total) : 120% Gain 200mV/MeV Measurements for intensity, DCO, Polarization & T1/2 for investigation of elaborate level structure of excited states of nuclei 23

Measured quantities for complete spectroscopy Polarization, DCO and Lineshape 24

Clover array at TIFR 25

Clover array at TIFR 26

Target chamber for INGA 27

Basic Configuration at TIFR from 2010 Set up in Beam hall II of TIFR-BARC (LINAC beam hall) Mounting position for 24 Clovers (~5% εp ) Movement on rails for precision alignment Space for mounting Charged Particle Array 3 at 23o, 40o, 65o, 115o, 140o, 157o and 6 at 90o 28

Outline 1. Scope of gamma spectroscopy for nuclear structure 2. Large Array of Detectors 3: Why digital? Basic components Comparison with analog systems Implementation for different detectors 4: INGA array at Pelletron LINAC facility 5: Application of these techniques in medical imaging 29

Slow-Fast coincidence techniques: Old school AMP E1 T A D C M Gamma source E2 AMP 30

Too complicated most of the times set up at TIFR during 2007 31

DSP based DAQ (from view point of researchers in nuclear physics) DSP gives an elegant solution for signal processing of radiation detectors Digital data can be stored and retrieved Numerical algorithms can be optimized for different detectors with same hardware to give E, T, PID with good resolution Compact, robust, flexible and fast Time correlation of events in arbitrary time scale 32

Requirement for experiments Digital Signal processing for radiation detectors FF [i ] = i j =i ( FL 1) Trace [ j ] i ( FL + FG ) Trace [ j ] j =i ( 2* FL + FG 1) Pulses involving time scale in 100 psec to 100 µsec 100 to 1000 channels for the typical experiments 100 Hz to 1MHz count rate for detectors Pulse shape information MHz to GHz 33

FF [i ] = i j =i ( FL 1) Trace[ j ] i ( FL + FG ) Trace[ j ] j =i ( 2*FL + FG 1) CFD[i + D] = FFTIFR, [i ASET + DColloquium ] FF2011 [i ] / 2 (W +1) 34

What happens with high count rate? 35

DSP based DAQ for 24 CS-Clovers and Ancillary detectors at TIFR 100 MHz & 12-bit ADC s Data rate: 80 MB/sec Handle high count rate with good E,T. Particle ID in CsI detectors using digital pulse shaping Trigger less system For in-beam Clover + CsI expts and off-line expts with planar detectors. 36

Signal processing with DDAQ γ -ray hits a crystal Pre-amplifier pulse is generated Amplification(1-10), Digitization (10ns), Trigger generation Software/Hardware Data Transfer BGO veto If no BGO veto energy and time stamp is recorded in a binary file Separate binary folders of different modules are merged in increasing time ordering Energy spectrum for individual channels Time coincidence spectrum By putting time gate Add-back spectrum for clover can be obtained 37

DDAQ with INGA Detector Array DSP DAQ Host PC PC for Storage & Analysis Detectors -> DSP cards -> PCI Bridge -> PC-> Gigabit -> PC 38

Compton suppression in Clover peak/total BGO off BGO on Single crystal of Clover ~ 10% ~ 15 % Clover Add-back ~ 22% ~ 40% 39

Energy: comparison with Analog system Eγ (kev) FWHM FWHM (kev) (kev) 121 1.15 1.82 356 1.30 1.97 778 1.61 2.16 1112 1.82 2.33 1408 1.98 2.56 40

Comparison of count rates in DDAQ and MCA for dead-time Eg (kev) 778 1112 1408 Area Area (DDAQ) (MCA) 5604 4489 5849 152 I1 (t ) dt =re rt dt 5226 4583 5710 Eu-133Ba source data taken for one hour with 46 channels are connected to DDAQ vs. 1channel connected to MCA. Analysis of time difference between consecutive events are shown in figure on right. 41

Better stability Conventional electronics DDAQ 42

Generating coincidence events from time stamped data 7-10 khz per crystal 15 20 khz 2-fold clover 3.5 5 khz 3-fold clover with 14 clovers >10 khz 3-fold with 24 clovers 43

Data Analysis Each event is time stamped with the internal clock. Coincidence events are generated from the time stamped list mode file. Each experimental run generates 4 *.bin files. The program timemerge4 combines the 4 files to generate one list mode file. This arranges the events as per increasing time. The program marcos does the sorting of the data to generate (after gain matching) 1d-histogram, 2dhistogram (gamma-gamma), DCO/DSAM matrix, Polarization, cube and time spectra. 11/12/2010

Coincident spectra for level scheme of 185Au with New DDAQ 45

Good energy resolution. What about time measurement? FPGA time 19 nsec!!! 46

HPGe traces A. Macchiavelli Measured pulse traces from clover 47

BaF2 HPGe Source 48

Pulsar Trace BNC Pulsar generates preamplifier like pulses of identical shape. Due to quick timing response in BaF2 detector, the trigger pulses generated in BNC pulsar has a very narrow distribution compared to HPGe as shown in the fig inset. 49

Algorithm used for getting first filter pulse and CFD pulses The digitized waveform stream can be represented by a data series Trace[i],i=0,1,2,... In fast filter algorithm FL is called fast length and FG is called the fast gap of the digital trapezoidal filter. In CFD algorithm D is called CFD delay length and f is a fraction 50

51

Timing Resolution with 60Co Digital CFD gives resolution ~ 9.1 nsec for individual clovers Improving the timing by storing pulse shape (up to 1 msec) Dynamic filter parameters for keeping good energy resolution 52

Timing with Fast Scintillators (LaBr3) Fitting the pulses with function to get time resolution of 160 250 ps even at 100 MHz sampling Preliminary result 53

Energy spectrum of NaI(Tl) multiplicity filter 54

Scintillation detector for charged particle detection Decay time constant: depends on the particle type alpha: ~720 ns proton: ~1150 ns electron: ~1540 ns Scintillator Photodiode Light-guide DETECTOR BIAS OUTPUT Rf Cf ALPHA PROTON SIGNAL SHAPING ALPHA PROTON 11/12/2010 55

CIRCUIT DIAGRAM 11/12/2010

Unipolar signal Vs Bipolar signal in analog 19 F + Ni(natural) @ 75 MeV ALPHA i PROTON At backward angle 110 where Elastic are not observed t U ALPHA PROTON t tα tp U ALPHA Unipolar signal Alpha PROTON Proton Gamma t 11/12/2010 Bipolar signal

DSP test results with charged particle detectors Alpha test with Si Preliminary result from beam test of CsI(Tl) Alpha DSP: Energy threshold will reduce for PID 58

Planar Ge detector 10 X and 10Y strips One strip 6mm x 60 mm Thickness 20 mm Position Resolution ~ 6 mm Position resolution can improve to 1 mm by gamma tracking by digital signal processing 59

Spectra from 10X-10Y detector Energy Characterization is completed. Imaging studies is planned using DSP. Study of heavy nuclei through decay spectroscopy. 60

36 experiments are proposed for the current campaign by TIFR, IUAC, BARC, IUC-DAE-Kolkata, SINP, VECC, IITs, Univ. collaboration 61

Physics with the array Exotic nuclear shapes M1 bands, Anti-magnetic bands Chiral bands Tetrahedral, Oblate bands Symmetries in medium mass nuclei near N~Z Spectroscopy of the heaviest nuclei Experiments with radioactive targets (e.g., 3H and many others) Neutron-rich nuclei Towards neutron shell closure Horizontal growth of level scheme 62

Some of the key future experiments with particle gamma coincidence Identify candidates for prompt proton emission outside of Z~28, N~28 Possibly neutron-deficient Te isotopes? Study astrophysically important nuclei around N=Z line Heavy nuclei spectroscopy with tagging on fast particle emission Investigation of proton rich nuclei in light mass region Investigation of lifetime of states in quasicontinuum 1 63

Summary DSP is an efficient & vesatile option for gamma spectrocopy. Nuclear Structure with varying J & T(N-Z) for probing Different phases, their coexistence & transitions Insight for shell structure and residual interactions Stable & RIB both are required for future experiment 64

Collectivity!!! And INGA Collaboration (TIFR-BARC-IUAC-IUC-SINP-VECC-Universities- IITs) 65

Collaboration & Acknowledgements S. Saha, J. Sethi, T. Trivedi, B.S. Naidu, P.B. Chavan, S. Jadhav, R. Donthi S. Sharma,Z. Naik, V. Parkar, A.Y. Deo P.K. Joshi, P. Verma, S. Sinha, H.C. Jain, R.K. Bhowmik INGA Collaboration R.G. Pillay, V. Nanal, I. Mazumdar, & DNAP members S.K. Sarkar Pelletron-Linac staff members, Central Workshop & LTF of TIFR 66

67