Accuracy of a whole‐body single‐photon emission computed tomography with a thallium‐bromide detector: Verification via Monte Carlo simulations

Background Single‐photon emission computed tomography (SPECT) devices equipped with cadmium–zinc–telluride (CZT) detectors achieve high contrast resolution because of their enhanced energy resolution. Recently, thallium bromide (TlBr) has gained attention as a detector material because of its high a...

Full description

Saved in:
Bibliographic Details
Published inMedical physics (Lancaster) Vol. 52; no. 6; pp. 4079 - 4095
Main Authors Ito, Toshimune, Hitomi, Keitaro, Ljungberg, Michael, Kawasaki, Sousei, Katayama, Yuka, Kato, Akane, Tsuchikame, Hirotatsu, Suzuki, Kentaro, Miyazaki, Kyosuke, Mogi, Ritsushi
Format Journal Article
LanguageEnglish
Published United States 01.06.2025
Subjects
Online AccessGet full text
ISSN0094-2405
2473-4209
1522-8541
2473-4209
DOI10.1002/mp.17724

Cover

Abstract Background Single‐photon emission computed tomography (SPECT) devices equipped with cadmium–zinc–telluride (CZT) detectors achieve high contrast resolution because of their enhanced energy resolution. Recently, thallium bromide (TlBr) has gained attention as a detector material because of its high atomic number and density. Purpose This study evaluated the clinical applicability of a SPECT system equipped with TlBr detectors using Monte Carlo simulations, focusing on 99mTc and 177Lu imaging. Methods This study used the Simulation of Imaging Nuclear Detectors Monte Carlo program to compare the imaging characteristics between a whole‐body SPECT system equipped with TlBr (T‐SPECT) and a system equipped with CZT detectors (C‐SPECT). The simulations were performed using a three‐dimensional brain phantom and a National Electrical Manufacturers Association body phantom to evaluate 99mTc and 177Lu imaging. The simulation parameters were accurately set by comparing them with the actual measurements. Results The T‐SPECT system demonstrated improved energy resolution and higher detection efficiency than the C‐SPECT system. In 99mTc imaging, T‐SPECT demonstrated 1.71 times higher photopeak counts and improved contrast resolution. T‐SPECT exhibited a significantly lower impact of hole tailing and higher‐energy resolution (4.50% for T‐SPECT vs. 7.34% for C‐SPECT). Furthermore, T‐SPECT showed higher peak signal‐to‐noise ratio (PSNR) and structural similarity (SSIM) values, indicating better image quality. In 177Lu imaging, T‐SPECT showed 2.76 times higher photopeak counts and improved energy resolution (3.94% for T‐SPECT vs. 5.20% for C‐SPECT). T‐SPECT demonstrated a higher contrast recovery coefficient (CRC) and contrast‐to‐noise ratio (CNR) across all acquisition times, maintaining sufficient counts even with shorter acquisition times. Moreover, T‐SPECT acquired higher low‐frequency values in power spectrum density (PSD), indicating more accurate internal image reproduction. Conclusions T‐SPECT offers superior energy resolution and detection efficiency than C‐SPECT. Moreover, T‐SPECT can provide higher contrast resolution and sensitivity in clinical imaging with 99mTc and 177Lu. Furthermore, the Monte Carlo simulations are confirmed to be a valuable guide for the development of T‐SPECT.
AbstractList Single-photon emission computed tomography (SPECT) devices equipped with cadmium-zinc-telluride (CZT) detectors achieve high contrast resolution because of their enhanced energy resolution. Recently, thallium bromide (TlBr) has gained attention as a detector material because of its high atomic number and density. This study evaluated the clinical applicability of a SPECT system equipped with TlBr detectors using Monte Carlo simulations, focusing on 99mTc and 177Lu imaging. This study used the Simulation of Imaging Nuclear Detectors Monte Carlo program to compare the imaging characteristics between a whole-body SPECT system equipped with TlBr (T-SPECT) and a system equipped with CZT detectors (C-SPECT). The simulations were performed using a three-dimensional brain phantom and a National Electrical Manufacturers Association body phantom to evaluate 99mTc and 177Lu imaging. The simulation parameters were accurately set by comparing them with the actual measurements. The T-SPECT system demonstrated improved energy resolution and higher detection efficiency than the C-SPECT system. In 99mTc imaging, T-SPECT demonstrated 1.71 times higher photopeak counts and improved contrast resolution. T-SPECT exhibited a significantly lower impact of hole tailing and higher-energy resolution (4.50% for T-SPECT vs. 7.34% for C-SPECT). Furthermore, T-SPECT showed higher peak signal-to-noise ratio (PSNR) and structural similarity (SSIM) values, indicating better image quality. In 177Lu imaging, T-SPECT showed 2.76 times higher photopeak counts and improved energy resolution (3.94% for T-SPECT vs. 5.20% for C-SPECT). T-SPECT demonstrated a higher contrast recovery coefficient (CRC) and contrast-to-noise ratio (CNR) across all acquisition times, maintaining sufficient counts even with shorter acquisition times. Moreover, T-SPECT acquired higher low-frequency values in power spectrum density (PSD), indicating more accurate internal image reproduction. T-SPECT offers superior energy resolution and detection efficiency than C-SPECT. Moreover, T-SPECT can provide higher contrast resolution and sensitivity in clinical imaging with 99mTc and 177Lu. Furthermore, the Monte Carlo simulations are confirmed to be a valuable guide for the development of T-SPECT.
Background Single‐photon emission computed tomography (SPECT) devices equipped with cadmium–zinc–telluride (CZT) detectors achieve high contrast resolution because of their enhanced energy resolution. Recently, thallium bromide (TlBr) has gained attention as a detector material because of its high atomic number and density. Purpose This study evaluated the clinical applicability of a SPECT system equipped with TlBr detectors using Monte Carlo simulations, focusing on 99mTc and 177Lu imaging. Methods This study used the Simulation of Imaging Nuclear Detectors Monte Carlo program to compare the imaging characteristics between a whole‐body SPECT system equipped with TlBr (T‐SPECT) and a system equipped with CZT detectors (C‐SPECT). The simulations were performed using a three‐dimensional brain phantom and a National Electrical Manufacturers Association body phantom to evaluate 99mTc and 177Lu imaging. The simulation parameters were accurately set by comparing them with the actual measurements. Results The T‐SPECT system demonstrated improved energy resolution and higher detection efficiency than the C‐SPECT system. In 99mTc imaging, T‐SPECT demonstrated 1.71 times higher photopeak counts and improved contrast resolution. T‐SPECT exhibited a significantly lower impact of hole tailing and higher‐energy resolution (4.50% for T‐SPECT vs. 7.34% for C‐SPECT). Furthermore, T‐SPECT showed higher peak signal‐to‐noise ratio (PSNR) and structural similarity (SSIM) values, indicating better image quality. In 177Lu imaging, T‐SPECT showed 2.76 times higher photopeak counts and improved energy resolution (3.94% for T‐SPECT vs. 5.20% for C‐SPECT). T‐SPECT demonstrated a higher contrast recovery coefficient (CRC) and contrast‐to‐noise ratio (CNR) across all acquisition times, maintaining sufficient counts even with shorter acquisition times. Moreover, T‐SPECT acquired higher low‐frequency values in power spectrum density (PSD), indicating more accurate internal image reproduction. Conclusions T‐SPECT offers superior energy resolution and detection efficiency than C‐SPECT. Moreover, T‐SPECT can provide higher contrast resolution and sensitivity in clinical imaging with 99mTc and 177Lu. Furthermore, the Monte Carlo simulations are confirmed to be a valuable guide for the development of T‐SPECT.
Author Tsuchikame, Hirotatsu
Ljungberg, Michael
Kato, Akane
Ito, Toshimune
Kawasaki, Sousei
Mogi, Ritsushi
Miyazaki, Kyosuke
Hitomi, Keitaro
Katayama, Yuka
Suzuki, Kentaro
Author_xml – sequence: 1
  givenname: Toshimune
  surname: Ito
  fullname: Ito, Toshimune
  email: toito@med.teikyo-u.ac.jp
  organization: Teikyo University
– sequence: 2
  givenname: Keitaro
  surname: Hitomi
  fullname: Hitomi, Keitaro
  organization: Tohoku University
– sequence: 3
  givenname: Michael
  surname: Ljungberg
  fullname: Ljungberg, Michael
  organization: Lund University
– sequence: 4
  givenname: Sousei
  surname: Kawasaki
  fullname: Kawasaki, Sousei
  organization: Department of Radiology, Nippon Medical School Hospital
– sequence: 5
  givenname: Yuka
  surname: Katayama
  fullname: Katayama, Yuka
  organization: Department of Radiological Technology, Showa University Hospital
– sequence: 6
  givenname: Akane
  surname: Kato
  fullname: Kato, Akane
  organization: Institute of Science Tokyo Hospital
– sequence: 7
  givenname: Hirotatsu
  surname: Tsuchikame
  fullname: Tsuchikame, Hirotatsu
  organization: Department of Radiology, Saiseikai Yokohamashi Tobu Hospital
– sequence: 8
  givenname: Kentaro
  surname: Suzuki
  fullname: Suzuki, Kentaro
  organization: Department of Radiological Technology, Toranomon Hospital
– sequence: 9
  givenname: Kyosuke
  surname: Miyazaki
  fullname: Miyazaki, Kyosuke
  organization: Department of Radiology, Kawasaki Municipal Kawasaki Hospital
– sequence: 10
  givenname: Ritsushi
  surname: Mogi
  fullname: Mogi, Ritsushi
  organization: Teikyo University
BackLink https://www.ncbi.nlm.nih.gov/pubmed/40017160$$D View this record in MEDLINE/PubMed
BookMark eNp1kEtOwzAQhi1URB8gcQLkLYuUceokDTtU8ZJawQLYRo7tNEZxHDkOUXYcgQUn5CSkDbBj5bHm0zcz_xSNSlNKhE4JzAmAf6GrOYkinx6giU-jhUd9iEdoAhBTz6cQjNG0rl8BIFwEcITGFIBEJIQJ-rzivLGMd9hkmOE2N4X8ev9Ijehwrcrt_lflxpkSS63qWvUFN7pqnBTYGW22llV5h1vl8l7gclYUqtE7hzVaCYmFdJI7Yy_xi7QqU5y5neRNMbwxpZN4xWxh-mm6Kfat-hgdZqyo5cnPO0PPN9dPqztv_XB7v7paezyAkHo0oDJIA2BLEsSMi_5oGUbxkvIozmSPiCwOBRN-BpzHXMhomUUi9AlNIaVxtpih88HblBXr2n7zpLJKM9slBJJdsomukn2yPXs2sFWTain-wN8oe8AbgFYVsvtXlGweB-E3hqSKfQ
ContentType Journal Article
Copyright 2025 The Author(s). published by Wiley Periodicals LLC on behalf of American Association of Physicists in Medicine.
2025 The Author(s). Medical Physics published by Wiley Periodicals LLC on behalf of American Association of Physicists in Medicine.
Copyright_xml – notice: 2025 The Author(s). published by Wiley Periodicals LLC on behalf of American Association of Physicists in Medicine.
– notice: 2025 The Author(s). Medical Physics published by Wiley Periodicals LLC on behalf of American Association of Physicists in Medicine.
DBID 24P
CGR
CUY
CVF
ECM
EIF
NPM
ADTOC
UNPAY
DOI 10.1002/mp.17724
DatabaseName Wiley Online Library Open Access
Medline
MEDLINE
MEDLINE (Ovid)
MEDLINE
MEDLINE
PubMed
Unpaywall for CDI: Periodical Content
Unpaywall
DatabaseTitle MEDLINE
Medline Complete
MEDLINE with Full Text
PubMed
MEDLINE (Ovid)
DatabaseTitleList MEDLINE

Database_xml – sequence: 1
  dbid: 24P
  name: Wiley Online Library (Open Access collection)
  url: https://authorservices.wiley.com/open-science/open-access/browse-journals.html
  sourceTypes: Publisher
– sequence: 2
  dbid: NPM
  name: PubMed
  url: https://proxy.k.utb.cz/login?url=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?db=PubMed
  sourceTypes: Index Database
– sequence: 3
  dbid: EIF
  name: MEDLINE
  url: https://proxy.k.utb.cz/login?url=https://www.webofscience.com/wos/medline/basic-search
  sourceTypes: Index Database
– sequence: 4
  dbid: UNPAY
  name: Unpaywall
  url: https://proxy.k.utb.cz/login?url=https://unpaywall.org/
  sourceTypes: Open Access Repository
DeliveryMethod fulltext_linktorsrc
Discipline Medicine
Physics
EISSN 2473-4209
EndPage 4095
ExternalDocumentID 10.1002/mp.17724
40017160
MP17724
Genre researchArticle
Journal Article
GrantInformation_xml – fundername: JSPS KAKENHI
  funderid: JP24K18776
– fundername: JSPS KAKENHI
  grantid: JP24K18776
GroupedDBID ---
--Z
-DZ
.GJ
0R~
1OB
1OC
24P
29M
2WC
33P
36B
3O-
4.4
53G
5GY
5RE
5VS
AAHHS
AAHQN
AAIPD
AAMNL
AANLZ
AAQQT
AASGY
AAXRX
AAYCA
AAZKR
ABCUV
ABDPE
ABEFU
ABFTF
ABJNI
ABLJU
ABQWH
ABXGK
ACAHQ
ACBEA
ACCFJ
ACCZN
ACGFO
ACGFS
ACGOF
ACPOU
ACXBN
ACXQS
ADBBV
ADBTR
ADKYN
ADMLS
ADOZA
ADXAS
ADZMN
AEEZP
AEGXH
AEIGN
AENEX
AEQDE
AEUYR
AEYWJ
AFBPY
AFFPM
AFWVQ
AGHNM
AGYGG
AHBTC
AIACR
AIAGR
AITYG
AIURR
AIWBW
AJBDE
ALMA_UNASSIGNED_HOLDINGS
ALUQN
ALVPJ
AMYDB
ASPBG
BFHJK
C45
CS3
DCZOG
DRFUL
DRMAN
DRSTM
DU5
EBD
EBS
EJD
EMB
EMOBN
F5P
HDBZQ
HGLYW
I-F
KBYEO
LATKE
LEEKS
LOXES
LUTES
LYRES
MEWTI
O9-
OVD
P2P
P2W
PALCI
PHY
RJQFR
RNS
ROL
SAMSI
SUPJJ
SV3
TEORI
TN5
TWZ
USG
WOHZO
WXSBR
XJT
ZGI
ZVN
ZXP
ZY4
ZZTAW
AAMMB
AEFGJ
AGXDD
AIDQK
AIDYY
CGR
CUY
CVF
ECM
EIF
NPM
ABUFD
ADTOC
AIQQE
LH4
UNPAY
ID FETCH-LOGICAL-c5064-454e5b50a8159acd209e67984c79fe506df96dad2f0cc9cde78f7d6214b0b49f3
IEDL.DBID UNPAY
ISSN 0094-2405
2473-4209
1522-8541
IngestDate Sun Oct 26 04:00:27 EDT 2025
Mon Jul 21 06:03:25 EDT 2025
Tue Jun 10 09:20:17 EDT 2025
IsDoiOpenAccess true
IsOpenAccess true
IsPeerReviewed true
IsScholarly true
Issue 6
Keywords phantoms–digital
instrumentation
development (new technology and techniques)
Monte Carlo modeling
Language English
License Attribution
2025 The Author(s). Medical Physics published by Wiley Periodicals LLC on behalf of American Association of Physicists in Medicine.
cc-by
LinkModel DirectLink
MergedId FETCHMERGED-LOGICAL-c5064-454e5b50a8159acd209e67984c79fe506df96dad2f0cc9cde78f7d6214b0b49f3
OpenAccessLink https://proxy.k.utb.cz/login?url=https://doi.org/10.1002/mp.17724
PMID 40017160
PageCount 17
ParticipantIDs unpaywall_primary_10_1002_mp_17724
pubmed_primary_40017160
wiley_primary_10_1002_mp_17724_MP17724
PublicationCentury 2000
PublicationDate June 2025
PublicationDateYYYYMMDD 2025-06-01
PublicationDate_xml – month: 06
  year: 2025
  text: June 2025
PublicationDecade 2020
PublicationPlace United States
PublicationPlace_xml – name: United States
PublicationTitle Medical physics (Lancaster)
PublicationTitleAlternate Med Phys
PublicationYear 2025
References 1995; 75
2023; 10
2013; 48
2021; 22
2017; 4
2004; 49
2020; 61
2023; 7
2023; 16
2021; 28
1999; 26
1995; 55
2011; 52
2022; 24
2001; 48
2024; 11
2022; 43
2022; 22
2014; 41
2021; 50
2004; 525
2022; 29
1999; 428
1989; 29
2017; 51
2009; 56
2007; 28
2021; 35
2016; 6
2019; 60
2014; 747
2019; 40
2007; 579
2015; 60
2000; 12
2013; 379
2002; 46
2022; 9
2004; 13
2016; 112
2013; 60
2022; 54
2005; 50
1977; 7
2016; 46
2001; 458
2003; 44
References_xml – volume: 28
  start-page: 719
  issue: 9
  year: 2007
  end-page: 725
  article-title: Evaluation of reconstruction techniques in regional cerebral blood flow SPECT using trade‐off plots: a Monte Carlo study
  publication-title: Nucl Med Commun
– volume: 379
  start-page: 93
  year: 2013
  end-page: 98
  article-title: Advances in TlBr detector development
  publication-title: J Crstal Growth
– volume: 50
  start-page: 329
  issue: 2
  year: 2005
  end-page: 346
  article-title: Unified description and validation of Monte Carlo simulators in PET
  publication-title: Phys Med Biol
– volume: 41
  start-page: 522
  issue: 3
  year: 2014
  end-page: 528
  article-title: Factors affecting the myocardial activity acquired during exercise SPECT with a high‐sensitivity cardiac CZT camera as compared with conventional Anger camera
  publication-title: Eur J Nucl Med Mol Imaging
– volume: 29
  start-page: 1686
  issue: 4
  year: 2022
  end-page: 1697
  article-title: Diagnostic accuracy of dynamic CZT‐SPECT in coronary artery disease. A systematic review and meta‐analysis
  publication-title: J Nucl Cardiol
– volume: 46
  start-page: 273
  issue: 4
  year: 2016
  end-page: 285
  article-title: Novel cadmium zinc telluride devices for myocardial perfusion imaging‐technological aspects and clinical applications
  publication-title: Semin Nucl Med
– volume: 44
  start-page: 602
  issue: 4
  year: 2003
  end-page: 609
  article-title: Evaluation of a small cadmium zinc telluride detector for scintimammography
  publication-title: J Nucl Med
– volume: 7
  start-page: 839
  issue: 8
  year: 2023
  end-page: 850
  article-title: 99mTc/123I dual‐radionuclide correction for self‐scatter, down‐scatter, and tailing effect for a CZT SPECT with varying tracer sistributions
  publication-title: IEEE Trans Radiat Plasma Med Sci
– volume: 16
  start-page: 569
  issue: 4
  year: 2023
  end-page: 577
  article-title: Verification of optimal conditions for the scattering correction of 123I‐FP‐CIT SPECT on a single‐photon emission tomography system with a two‐detector whole‐body cadmium‐zinc‐telluride semiconductor detector
  publication-title: Radiol Phys Technol
– volume: 49
  start-page: 4543
  issue: 19
  year: 2004
  end-page: 4561
  article-title: GATE: a simulation toolkit for PET and SPECT
  publication-title: Phys Med Biol
– volume: 55
  start-page: 5801s
  issue: 23
  year: 1995
  end-page: 5804s
  article-title: Somatostatin receptor scintigraphy in patients with carcinoid tumors: comparison between radioligand uptake and tumor markers
  publication-title: Cancer Res
– volume: 11
  start-page: 91
  issue: 1
  year: 2024
  article-title: Bias and precision of SPECT‐based 177Lu activity‐concentration estimation using a ring‐configured solid‐state versus a dual‐headed anger system
  publication-title: EJNMMI Phys
– volume: 24
  start-page: 1018
  issue: 6
  year: 2022
  end-page: 1027
  article-title: Feasibility of imaging small animals on a 360° whole‐body cadmium zinc telluride SPECT camera: a phantom study
  publication-title: Mol Imaging Biol
– volume: 61
  start-page: 1381
  issue: 9
  year: 2020
  end-page: 1387
  article-title: Digital solid‐state SPECT/CT quantitation of absolute 177Lu radiotracer concentration: in vivo and in vitro validation
  publication-title: J Nucl Med
– volume: 75
  start-page: 156
  issue: 1
  year: 1995
  end-page: 159
  article-title: Charge transport in arrays of semiconductor gamma‐ray detectors
  publication-title: Phys Rev Lett
– volume: 12
  start-page: 757
  issue: 6
  year: 2000
  end-page: 764
  article-title: Assessing the performance of SPM analyses of spect neuroactivation studies. Statistical parametric mapping
  publication-title: Neuroimage
– volume: 48
  start-page: 1094
  issue: 9
  year: 2001
  end-page: 1109
  article-title: Generalizations of the sampling theorem: seven decades after Nyquist
  publication-title: IEEE Trans Circuits Syst I
– volume: 60
  start-page: 1156
  issue: 2
  year: 2013
  end-page: 1161
  article-title: TlBr capacitive Frisch grid detectors
  publication-title: IEEE Trans Nucl Sci
– volume: 29
  start-page: 1051
  issue: 3
  year: 2022
  end-page: 1063
  article-title: The diagnostic value of SPECT CZT quantitative myocardial blood flow in high‐risk patients
  publication-title: J Nucl Cardiol
– volume: 29
  start-page: 257
  issue: 4
  year: 1989
  end-page: 272
  article-title: A Monte Carlo program for the simulation of scintillation camera characteristics
  publication-title: Comput Methods Programs Biomed
– volume: 52
  start-page: 210
  issue: 2
  year: 2011
  end-page: 217
  article-title: Cardiac dedicated ultrafast SPECT cameras: new designs and clinical implications
  publication-title: J Nucl Med
– volume: 51
  start-page: 331
  issue: 4
  year: 2017
  end-page: 337
  article-title: Evaluation of cadmium‐zinc‐telluride detector‐based single‐photon emission computed tomography for nuclear cardiology: a comparison with conventional anger single‐photon emission computed tomography
  publication-title: Nucl Med Mol Imaging
– volume: 458
  start-page: 413
  issue: 1‐2
  year: 2001
  end-page: 417
  article-title: On the development of compound semiconductor thallium bromide detectors for astrophysics
  publication-title: Nucl Instrum Methods Phys
– volume: 525
  start-page: 199
  issue: 1‐2
  year: 2004
  end-page: 204
  article-title: Pixellated thallium bromide detectors for gamma‐ray spectroscopy and imaging
  publication-title: Nucl Instrum Methods Phys
– volume: 60
  start-page: 6131
  issue: 15
  year: 2015
  end-page: 6149
  article-title: Pharmacokinetic digital phantoms for accuracy assessment of image‐based dosimetry in 177Lu‐DOTATATE peptide receptor radionuclide therapy
  publication-title: Phys Med Biol
– volume: 7
  start-page: 337
  issue: 9
  year: 1977
  end-page: 365
  article-title: Emission computed tomography
  publication-title: Semin Nucl Med
– volume: 46
  start-page: 48
  issue: 1
  year: 2002
  end-page: 61
  article-title: Monte Carlo simulations in SPET and PET
  publication-title: Q J Nucl Med
– volume: 29
  start-page: 3137
  issue: 6
  year: 2022
  end-page: 3151
  article-title: The current status of CZT SPECT myocardial blood flow and reserve assessment: tips and tricks
  publication-title: J Nucl Cardiol
– volume: 28
  start-page: 249
  issue: 1
  year: 2021
  end-page: 259
  article-title: Absolute myocardial blood flows derived by dynamic CZT scan vs invasive fractional flow reserve: correlation and accuracy
  publication-title: J Nucl Cardiol
– volume: 40
  start-page: 693
  issue: 7
  year: 2019
  end-page: 702
  article-title: Evaluation of edge‐preserving and noise‐reducing effects using the nonlinear diffusion method in bone single‐photon emission computed tomography
  publication-title: Nucl Med Commun
– volume: 26
  start-page: 574
  issue: 4
  year: 1999
  end-page: 608
  article-title: Relevance of accurate Monte Carlo modeling in nuclear medical imaging
  publication-title: Med Phys
– volume: 579
  start-page: 153
  issue: 1
  year: 2007
  end-page: 156
  article-title: Influence of zone purification process on TlBr crystals for radiation detector fabrication
  publication-title: Nucl Instrum Methods Phys
– volume: 48
  start-page: 950
  issue: 4
  year: 2001
  end-page: 959
  article-title: Recent progress in CdTe and CdZnTe detectors
  publication-title: IEEE Trans Nucl Sci
– volume: 56
  start-page: 1859
  issue: 4
  year: 2009
  end-page: 1862
  article-title: Polarization phenomena in TlBr detectors
  publication-title: IEEE Trans Nucl Sci
– volume: 22
  start-page: 7374
  issue: 19
  year: 2022
  article-title: Development and applications of Compton camera‐a review
  publication-title: Sensors
– volume: 48
  start-page: 452
  issue: 3
  year: 2013
  end-page: 458
  article-title: Investigation of the freely available easy‐to‐use software “EZR” for medical statistics
  publication-title: Bone Marrow Transplant
– volume: 60
  start-page: 3045
  issue: 8
  year: 2015
  end-page: 3063
  article-title: Model‐based correction for scatter and tailing effects in simultaneous 99mTc and 123I imaging for a CdZnTe cardiac SPECT camera
  publication-title: Phys Med Biol
– volume: 22
  start-page: 165
  issue: 2
  year: 2021
  end-page: 177
  article-title: Experimental evaluation of the GE NM/CT 870 CZT clinical SPECT system equipped with WEHR and MEHRS collimator
  publication-title: J Appl Clin Med Phys
– volume: 13
  start-page: 600
  issue: 4
  year: 2004
  end-page: 612
  article-title: Image quality assessment: from error visibility to structural similarity
  publication-title: IEEE Trans Image Process
– volume: 54
  start-page: 4652
  issue: 12
  year: 2022
  end-page: 4659
  article-title: Evaluation of TlBr semiconductor detector in gamma camera imaging: Monte Carlo simulation study
  publication-title: Nucl Eng Technol
– volume: 112
  start-page: 156
  year: 2016
  end-page: 164
  article-title: Gamma camera calibration and validation for quantitative SPECT imaging with 177Lu
  publication-title: Appl Radiat Isot
– volume: 50
  start-page: 132
  issue: 2
  year: 2021
  end-page: 136
  article-title: Comparing the patient experience between a novel 360° gamma camera (VERITON‐CT) and a conventional dual head gamma camera
  publication-title: J Nucl Med Technol
– volume: 747
  start-page: 7
  year: 2014
  end-page: 12
  article-title: Characterization of pixelated TlBr detectors with Tl electrodes
  publication-title: Nucl Instrum Methods Phys
– volume: 60
  start-page: 13S
  issue: 2
  year: 2019
  end-page: 19S
  article-title: Future of theranostics: an outlook on precision oncology in nuclear medicine
  publication-title: J Nucl Med
– volume: 9
  start-page: 35
  issue: 1
  year: 2022
  article-title: Monte Carlo modelling of a compact CZT‐based gamma camera with application to 177Lu imaging
  publication-title: EJNMMI Phys
– volume: 4
  start-page: 2
  issue: 1
  year: 2017
  article-title: Accuracy of 177Lu activity quantification in SPECT imaging: a phantom study
  publication-title: EJNMMI Phys
– volume: 10
  start-page: 27
  issue: 1
  year: 2023
  article-title: Validation of 99mTc and 177Lu quantification parameters for a Monte Carlo modelled gamma camera
  publication-title: EJNMMI Phys
– volume: 35
  start-page: 823
  issue: 7
  year: 2021
  end-page: 833
  article-title: Monte Carlo simulation of the acquisition conditions for 177Lu molecular imaging of hepatic tumors
  publication-title: Ann Nucl Med
– volume: 6
  start-page: 16
  issue: 1
  year: 2016
  article-title: Quantitative accuracy of 177Lu SPECT reconstruction using different compensation methods: phantom and patient studies
  publication-title: EJNMMI Res
– volume: 43
  start-page: 398
  issue: 4
  year: 2022
  end-page: 409
  article-title: Optimization of image reconstruction method of cerebral blood flow perfusion imaging with digital CZT SPECT
  publication-title: Nucl Med Commun
– volume: 428
  start-page: 372
  issue: 2‐3
  year: 1999
  end-page: 378
  article-title: Improved spectrometric characteristics of thallium bromide nuclear radiation detectors
  publication-title: Nucl Instrum Methods Phys
SSID ssj0006350
Score 2.4709637
Snippet Background Single‐photon emission computed tomography (SPECT) devices equipped with cadmium–zinc–telluride (CZT) detectors achieve high contrast resolution...
Single-photon emission computed tomography (SPECT) devices equipped with cadmium-zinc-telluride (CZT) detectors achieve high contrast resolution because of...
SourceID unpaywall
pubmed
wiley
SourceType Open Access Repository
Index Database
Publisher
StartPage 4079
SubjectTerms Bromides
Cadmium
development (new technology and techniques)
Humans
instrumentation
Lutetium
Monte Carlo Method
Monte Carlo modeling
Phantoms, Imaging
phantoms–digital
Tellurium
Thallium
Tomography, Emission-Computed, Single-Photon - instrumentation
Whole Body Imaging - instrumentation
Zinc
SummonAdditionalLinks – databaseName: Wiley Online Library Open Access
  dbid: 24P
  link: http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwjV3LSgMxFA0-8LER39YXQcRddSZNZhp3RZQiVLpQcTfkiYVOZ2inSnd-ggu_0C8xNzOtuhBcDUMyGchNck_uTc5B6FQ6r-O8gq0TZt0GxYYG8rthncTC7YEaKg4CuO_cuYvaD_T2iT1VpyrhLkzJDzELuMHM8Os1THAhRxffpKFpfh46aEjn0WLoYAyMbkK7s1XYOdLy-gmnkEFgU-LZgFxMv_zhdFbGg1xMXkW__xukei9zs47WKniIW6U9N9CcGWyi5U6VAN9ES_7EphptoY-WUuOhUBOcWSzwK-jcfr69y0xPMOz__Vv-nDlsh0HTDaJiWJUaDhoXWVpxVWOIxLoGClBV6Y1TaGOYpT1tsDaFj-lf4kc3Tm0V3cMvPYE7QGqFr8Swn7m_pZUG2GgbPdxc31-165XEQl0BUx0wnhsmWSCaDtYIpUnADeRlqIq5Na6KtjzSQhMbKMWVNnHTxjoiIZWBpNw2dtDCIBuYPYQjanUcWxFyyahlkeBMNizjxBKqBA9qaLfs7SQveTQSWpL1uJKTWffPCks6ZZKkeeKNVUNn3i5_Vkg6Xf_c_2_FA7RKQMzXh1QO0UIxHJsjhzAKeeyH0hcnwdBz
  priority: 102
  providerName: Wiley-Blackwell
Title Accuracy of a whole‐body single‐photon emission computed tomography with a thallium‐bromide detector: Verification via Monte Carlo simulations
URI https://onlinelibrary.wiley.com/doi/abs/10.1002%2Fmp.17724
https://www.ncbi.nlm.nih.gov/pubmed/40017160
https://doi.org/10.1002/mp.17724
UnpaywallVersion publishedVersion
Volume 52
hasFullText 1
inHoldings 1
isFullTextHit
isPrint
link http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwjV1Lb9NAEB61qXhceBQo5VGtEOLmYG927Sy3qKKqkBzlQFA5WfsUEXFsJXarcOIncOAX8kuYXbtViwTiYsva1djyrDTfzsx-H8BrhVEHo4KLKHe4QXGJ9fXdJKKZxD3QSGdx7M8759P0dM4-nPGzHSCXZ2Fu1u_p27IeJggA2S7spRzR9gD25tPZ5HNHLsl8cYAHSlTcU415EKqkLBtFjMbikmv2mplrceZOu6rl9kIulzdxaQgsJ_e7BsdN4CP0_SRfh22jhvrbH2yN__rmB3CvR5Vk0i2Dh7BjV_twO-_r5vtwKzR66s0j-DnRul1LvSWVI5JceHncX99_qMpsiU8bhKf6S4WQkHgpOJ9MI7qTfjCkqcqe4pr4BC4aaLwYy6ItvY11VS6MJcY2oRTwjnzC5e36pCA5X0iSey4scizXywrfVvbSYZvHMD95__H4NOqVGSLtCe48UbrlisdyjGhIaoM_2_pyDtOZcBanGCdSIw11sdZCG5uNXWZSmjAVKybc6AkMVtXKPgWSMmeyzMlEKM4cT6XgauS4oI4yLUV8CAedx4q6o98oWMfxgyOvrlx4NdixMNOirIvgg0N4E3z71wlFPgv3Z_9j7TncpV7_N2RhXsCgWbf2JYKSRh3BLmUzvE5n-VG_Rn8DXMHgnA
linkProvider Unpaywall
linkToHtml http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwjV3LTtwwFL2ioBY2CGjLG6wKdTcl8dgJhhVCoOERxAIqdpHjhzrSZBINGdDs-AQWfCFfgq-TGegCiVUU-caR_LrX59rnAOxkzus4r2BblFu3QbGhwfxu2KKxdHugtoqDAO87J5dR54ad3fLbKTgY34Wp-SEmgBvODL9e4wRHQHr3jTU0L_-ELjZkX2CGRWGEOy_KribLsPOk9f0TwTCFwMfMswHdHX_5zuvMDvulHD3IXu__KNW7mZMFmG_iQ3JYd-giTJn-EnxLmgz4Enz1RzbV3Xd4PlRqOJBqRApLJHlAoduXx6es0COCAIB_K_8VLrgjKOqGsBhRtYiDJlWRN2TVBKFYV0GFsirdYY51DIq8qw3RpvKg_j756waqbeA9ct-VJEFWK3IkB73C_S1vRMDufsDNyfH1UafVaCy0FFLVIeW54RkP5J6La6TSNBAGEzNMxcIaZ6KtiLTU1AZKCaVNvGdjHdGQZUHGhG3_hOl-0TcrQCJmdRxbGYqMM8sjKXjWtlxQS5mSIliF5bq107Im0khZzdbjSn5Nmn9SWPMp0zQvU99Zq_Db98uHBmly5Z9rnzXchtnOdXKRXpxenq_DHEVlX4-vbMB0NRiaTRduVNmWH1avbJTT3w
linkToPdf http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwjV3JbtswEB0kKZrkUrRO0rgrURS9OZFoUjLbk-HWcBcbPtRBbgLFBTVgWYItx_Ctn9BDv7BfUg4lu8khQE-CwBEFcJvhG_I9gLep8zrOK9gW5dZtUGxoML8btmgs3R6oreIgwPvOw1E0mLAv1_x6Dz5s78JU_BA7wA1nhl-vcYKbQtvLf6yhWXERutiQ7cMDxl29SOvMxrtl2HnS6v6JYJhC4Fvm2YBebr-85XWOVvNCbtZyNrsbpXo3038Mj-r4kHSrDn0Ce2begMNhnQFvwEN_ZFMtT-B3V6nVQqoNyS2RZI1Ct39-_kpzvSEIAPi34kfugjuCom4IixFViThoUuZZTVZNEIp1FZQoqzJdZVjHIs-m2hBtSg_qvydXbqDaGt4jN1NJhshqRXpyMcvd37JaBGx5CpP-p--9QavWWGgppKpDynPDUx7IjotrpNI0EAYTM0zFwhpnoq2ItNTUBkoJpU3csbGOaMjSIGXCts_gYJ7PzTmQiFkdx1aGIuXM8kgKnrYtF9RSpqQImvC0au2kqIg0Elax9biSN7vm3xVWfMo0yYrEd1YT3vl-udcgGY7989n_Gr6Gw_HHfvLt8-jrczimKOzr4ZUXcFAuVualizbK9JUfVX8BXzrTbg
linkToUnpaywall http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwjV1LT9wwEB7BokIv0PIqT1kV6i1L4rWTNbcVKkJIizh0KzhFfooVm020m7DanvoTOPAL-0tqOwFBpSJOUWRrEnkszeeZ8fcBHAkbdWxUMAGmxh5QTKRdfTcKcMLtGagjkzB09537l_H5gFxc0-sFQE93YV7X7_FxVrQjCwDJIizF1KLtFiwNLq96NzW5JHHFAeopUe2Zqku9UCUmSScgOGRPXLMvzLyIMyvVuODzGR-NXuNSH1jO1uoGx6nnI3T9JHftqhRt-esftsa3_vkTrDaoEvXqbfAZFvR4HZb7Td18HT74Rk853YDHnpTVhMs5yg3iaObkcf_8fhC5miOXNvBvxW1uISFyUnAumYZkLf2gUJlnDcU1cglca6B0YizDKnM2Jnk2VBopXfpSwAn6abe3aZKC6H7IUd9xYaFTPhnl9mtZIx023YTB2fcfp-dBo8wQSEdw54jSNRU05F2LhrhUdrG1K-cQmTCj7RRlWKy4wiaUkkmlk65JVIwjIkJBmOlsQWucj_UXQDExKkkMj5igxNCYMyo6hjJsMJGchTuwXXssLWr6jZTUHD925OuzC58HaxZmnGZF6n2wA9-8b_87Ie1f-efue6ztwUfs9H99FmYfWuWk0gcWlJTisNmXfwHm6d65
openUrl ctx_ver=Z39.88-2004&ctx_enc=info%3Aofi%2Fenc%3AUTF-8&rfr_id=info%3Asid%2Fsummon.serialssolutions.com&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&rft.genre=article&rft.atitle=Accuracy+of+a+whole%E2%80%90body+single%E2%80%90photon+emission+computed+tomography+with+a+thallium%E2%80%90bromide+detector%3A+Verification+via+Monte+Carlo+simulations&rft.jtitle=Medical+physics+%28Lancaster%29&rft.au=Ito%2C+Toshimune&rft.au=Hitomi%2C+Keitaro&rft.au=Ljungberg%2C+Michael&rft.au=Kawasaki%2C+Sousei&rft.date=2025-06-01&rft.issn=0094-2405&rft.eissn=2473-4209&rft.volume=52&rft.issue=6&rft.spage=4079&rft.epage=4095&rft_id=info:doi/10.1002%2Fmp.17724&rft.externalDBID=10.1002%252Fmp.17724&rft.externalDocID=MP17724
thumbnail_l http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=0094-2405&client=summon
thumbnail_m http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=0094-2405&client=summon
thumbnail_s http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=0094-2405&client=summon