Phosphors for radiation detectors / (Record no. 88482)

000 -LEADER
fixed length control field 12436nam a22004457a 4500
003 - CONTROL NUMBER IDENTIFIER
control field CITU
005 - DATE AND TIME OF LATEST TRANSACTION
control field 20240912081826.0
006 - FIXED-LENGTH DATA ELEMENTS--ADDITIONAL MATERIAL CHARACTERISTICS--GENERAL INFORMATION
fixed length control field m o d
007 - PHYSICAL DESCRIPTION FIXED FIELD--GENERAL INFORMATION
fixed length control field cr cnu|||unuuu
008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 240912b |||||o|||| 00| 0 eng d
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number 9781119583325
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number 9781119583363
Qualifying information (electronic bk. : oBook)
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number 1119583365
Qualifying information (electronic bk. : oBook)
024 7# - OTHER STANDARD IDENTIFIER
Standard number or code 10.1002/9781119583363
Source of number or code doi
035 ## - SYSTEM CONTROL NUMBER
System control number (OCoLC)1297839613
041 ## - LANGUAGE CODE
Language code of text/sound track or separate title eng
050 #4 - LIBRARY OF CONGRESS CALL NUMBER
Classification number QC795.5
082 04 - DEWEY DECIMAL CLASSIFICATION NUMBER
Classification number 539.77
Edition number 23
245 00 - TITLE STATEMENT
Title Phosphors for radiation detectors /
Statement of responsibility, etc edited by Masanori Koshimizu, Takayuki Yanagida.
264 #1 - PUBLICATION, DISTRIBUTION, ETC. (IMPRINT)
Place of publication, distribution, etc Hoboken, NJ :
Name of publisher, distributor, etc Wiley,
Date of publication, distribution, etc 2022.
300 ## - PHYSICAL DESCRIPTION
Extent 1 online resource.
336 ## - CONTENT TYPE
Content type term text
Content type code txt
Source rdacontent.
337 ## - MEDIA TYPE
Media type term computer
Media type code c
Source rdamedia.
338 ## - CARRIER TYPE
Carrier type term online resource
Carrier type code cr
Source rdacarrier.
340 ## - PHYSICAL MEDIUM
Source rdacc
Authority record control number or standard number http://rdaregistry.info/termList/RDAColourContent/1003.
500 ## - GENERAL NOTE
General note Includes index.
505 0# - CONTENTS
Formatted contents note Table of Contents<br/><br/>List of Contributors xi<br/><br/>Preface xiii<br/><br/>Series Preface xv<br/><br/>1 Ionizing Radiation Induced Luminescence 1<br/>Takayuki Yanagida<br/><br/>1.1 Introduction 1<br/><br/>1.2 Interactions of Ionizing Radiation with Matter 3<br/><br/>1.3 Scintillation 4<br/><br/>1.3.1 Energy Conversion Mechanism 4<br/><br/>1.3.2 Emission Mechanism 5<br/><br/>1.3.3 Scintillation Light Yield and Energy Resolution 8<br/><br/>1.3.4 Timing Properties 14<br/><br/>1.3.5 Radiation Hardness 17<br/><br/>1.3.6 Temperature Dependence 18<br/><br/>1.4 Ionizing Radiation Induced Storage Luminescence 18<br/><br/>1.4.1 General Description 18<br/><br/>1.4.2 Analytical Description of TSL 19<br/><br/>1.4.3 Analytical Description of OSL 24<br/><br/>1.5 Relationship of Scintillation and Storage Luminescence 26<br/><br/>1.6 Common Characterization Techniques of Ionizing Radiation Induced Luminescence Properties 29<br/><br/>References 35<br/><br/>2 Organic Scintillators 39<br/>Masanori Koshimizu<br/><br/>2.1 Introduction 39<br/><br/>2.2 Basic Electronic Processes in Organic Scintillators 40<br/><br/>2.2.1 Electronic States and Excited States Dynamics of Organic Molecules 40<br/><br/>2.2.2 Excitation Energy Transfer 43<br/><br/>2.2.3 Scintillation Dynamics in Organic Scintillators at High Linear Energy Transfer 50<br/><br/>2.3 Liquid Scintillators 51<br/><br/>2.4 Organic Crystalline Scintillators 54<br/><br/>2.5 Plastic Scintillators 55<br/><br/>2.6 Organic–Inorganic Hybrid Scintillators 59<br/><br/>2.6.1 Loaded Organic Scintillators 59<br/><br/>2.6.2 Organic–Inorganic Nanocomposite Scintillators 60<br/><br/>References 61<br/><br/>3 Inorganic Oxide Scintillators 67<br/>Daisuke Nakauchi, Noriaki Kawaguchi, and Takayuki Yanagida<br/><br/>3.1 Introduction 67<br/><br/>3.2 Crystal Growth 67<br/><br/>3.3 Outlines of Oxide Scintillators 70<br/><br/>3.4 Silicate Materials 73<br/><br/>3.4.1 Ce:Gd2SiO5 (Ce:GSO) 73<br/><br/>3.4.2 Ce:Lu2SiO5 (Ce:LSO) 74<br/><br/>3.4.3 Ce:Gd2Si2O7 (Ce:GPS) 76<br/><br/>3.4.4 LPS 77<br/><br/>3.5 Garnet Materials 77<br/><br/>3.5.1 Ce:Y3Al5O12 (Ce:YAG) 77<br/><br/>3.5.2 Ce:Lu3Al5O12 (Ce:LuAG), Pr:Lu3Al5O12 (Pr:LuAG) 79<br/><br/>3.5.3 Ce:Gd3Al2Ga3O12 (Ce:GAGG) 79<br/><br/>3.5.4 Ce:Tb3Al5O12 (Ce:TAG) 80<br/><br/>3.6 Perovskite Materials 82<br/><br/>3.6.1 Ce:YAlO3 (Ce:YAP) 82<br/><br/>3.6.2 Ce:LuAlO3 (Ce:LuAP) 82<br/><br/>3.7 Materials with Intrinsic Luminescence 83<br/><br/>3.7.1 CdWO4 83<br/><br/>3.7.2 Bi4Ge3O12 (BGO) 84<br/><br/>3.7.3 PbWO4 85<br/><br/>References 85<br/><br/>4 Inorganic Fluoride Scintillators 91<br/>Noriaki Kawaguchi, Hiromi Kimura, Daisuke Nakauchi, Takumi Kato, and Takayuki Yanagida<br/><br/>4.1 Introduction 91<br/><br/>4.2 Crystal Growth of Fluorides 94<br/><br/>4.2.1 Classification of Methods for Crystal Growth 94<br/><br/>4.2.2 Furnace Materials, Atmosphere, and Scavengers for Fluoride Crystal Growth 95<br/><br/>4.2.3 Fluoride Crystal Growth Methods by Pulling Out from the Melt 96<br/><br/>4.2.4 Fluoride Crystal Growth Methods by Solidifying the Melt in the Crucible 98<br/><br/>4.2.5 Fluoride Crystal Growth Methods Without Using Crucibles 99<br/><br/>4.3 Outline of Fluoride Scintillators 100<br/><br/>4.4 Fluoride Scintillators for γ-Ray Detection 101<br/><br/>4.4.1 Fluoride Scintillators Based on Luminescence from 5d-4f Transitions of Ce3+ Ions 101<br/><br/>4.4.2 Fluoride Scintillators Based on Core-Valence Luminescence 102<br/><br/>4.4.3 VUV Emitting Fluoride Scintillators Doped with Nd3+, Er3+, and Tm3+ Ions 105<br/><br/>4.5 Fluoride Scintillators for Neutron Detection 106<br/><br/>4.5.1 Review for Neutron Scintillators 106<br/><br/>4.5.2 LiCaAlF6 Single Crystals 108<br/><br/>4.5.3 LiF/CaF2 Eutectic Composites 111<br/><br/>4.6 Fluoride Scintillators for Charged Particle Detection 113<br/><br/>4.6.1 Methods for Charged Particle Detection 113<br/><br/>4.6.2 CaF2 Based Scintillators for Charged Particle Detection 115<br/><br/>References 117<br/><br/>5 Inorganic Halide Scintillators 121<br/>Yutaka Fujimoto<br/><br/>5.1 Introduction: History of Inorganic Halide Scintillator Research and Development 121<br/><br/>5.2 Characteristics of Halide Materials 122<br/><br/>5.2.1 Formation of Color Center and Self-Trapped Exciton 122<br/><br/>5.2.2 Hygroscopicity 123<br/><br/>5.3 Basic Techniques for Halide Scintillation Crystal Growth 125<br/><br/>5.4 Novel Ternary and Quaternary Halide Scintillators 127<br/><br/>5.4.1 Alkali Halide-Rare Earth Halide (AX–REX3) 127<br/><br/>5.4.2 Alkali Halide-Alkalin Earth Halide (AX–AEX2) 130<br/><br/>5.4.3 Elpasolite 134<br/><br/>5.5 Mixed-Anion Halide Scintillators 135<br/><br/>5.6 Next Generation of Halide Scintillators 137<br/><br/>5.6.1 Hf-and Tl-Based<br/><br/>Halide Scintillators 137<br/><br/>References 141<br/><br/>6 Semiconductor Scintillators 147<br/>Naoki Kawano<br/><br/>6.1 Introduction 147<br/><br/>6.2 Photoluminescence and Scintillation Mechanisms in Semiconductors 149<br/><br/>6.3 Various Semiconductor Scintillators 154<br/><br/>6.3.1 Undoped Semiconductor Scintillator 155<br/><br/>6.3.2 Doped Semiconductor Scintillator 158<br/><br/>6.4 Quantum Size Effect 161<br/><br/>6.5 Organic–Inorganic Perovskite-Type Compounds 165<br/><br/>6.5.1 Introduction 165<br/><br/>6.5.2 Materials and Structures 166<br/><br/>6.5.3 Sample Preparation 167<br/><br/>6.5.4 Fundamental Optical Property 169<br/><br/>6.5.5 Scintillation 173<br/><br/>References 178<br/><br/>7 Thermally Stimulated Luminescent (TSL) Materials 181<br/>Kiyomitsu Shinsho<br/><br/>7.1 Introduction 181<br/><br/>7.2 TSL Phenomenon 184<br/><br/>7.2.1 Basic Principles of TSL 184<br/><br/>7.2.2 Theory and Measurement of Glow Curves 185<br/><br/>7.3 TSL Materials: Fluoride, Oxides, Sulfates, and Borate 190<br/><br/>7.3.1 Fluorides 190<br/><br/>7.3.2 Oxides 198<br/><br/>7.3.3 Sulfates 202<br/><br/>7.3.4 Borates 204<br/><br/>7.4 TSL Dosimetric Properties for Photons, Charged Particles, and Neutrons 206<br/><br/>7.4.1 TSL Dosimetric Properties for Photons 206<br/><br/>7.4.2 TSL Dosimetric Properties for Charged Particles 211<br/><br/>7.4.3 TSL Dosimetric Properties for Neutrons 214<br/><br/>7.5 Two-Dimensional (2-D) TSL Dosimetry 214<br/><br/>7.5.1 Introduction 214<br/><br/>7.5.2 Types of 2-D TSLDs 215<br/><br/>7.5.3 Measurement Systems 216<br/><br/>7.5.4 Application of 2-D TSLDs in Photon Beam Radiotherapy 218<br/><br/>7.5.5 Outlook for 2-D TSLDs 220<br/><br/>References 220<br/><br/>8 Optically-Stimulated Luminescent Dosimeters 225<br/>Hidehito Nanto and Go Okada<br/><br/>8.1 Introduction 225<br/><br/>8.2 Principles of OSL Phenomenon 226<br/><br/>8.3 OSL Materials and Dosimeters 235<br/><br/>8.4 Applications of OSL 239<br/><br/>8.5 Future Perspective 242<br/><br/>References 243<br/><br/>9 Radiophotoluminescence (RPL) 247<br/>Go Okada, Takayuki Yanagida, Hidehito Nanto, and Safa Kasap<br/><br/>9.1 Introduction 247<br/><br/>9.2 RPL Phenomenon and the Definition 248<br/><br/>9.3 RPL Materials and Applications 249<br/><br/>9.3.1 Introduction 249<br/><br/>9.3.2 Ag-Doped Sodium-Aluminophosphate Glasses 252<br/><br/>9.3.3 Al2O3:C,Mg 260<br/><br/>9.3.4 LiF 264<br/><br/>9.3.5 Sm-Doped Compounds 268<br/><br/>9.3.6 Other RPL Materials 276<br/><br/>9.4 Conclusions 278<br/><br/>References 278<br/><br/>10 New Materials for Radiation Detectors: Transparent Ceramics 283<br/>Takumi Kato, Noriaki Kawaguchi, and Takayuki Yanagida<br/><br/>10.1 Introduction of Transparent Ceramic Materials 283<br/><br/>10.1.1 Light Scattering Sources in Ceramics 283<br/><br/>10.1.2 History and Applications on Transparent Ceramics 285<br/><br/>10.2 Preparation Methodology 287<br/><br/>10.2.1 Sintering Mechanism of Ceramics 287<br/><br/>10.2.2 Effect of Residual Pores 290<br/><br/>10.2.3 Preparation Methods of Transparent Ceramics 291<br/><br/>10.3 Transparent Materials 292<br/><br/>10.4 Transparent Ceramic Scintillator 293<br/><br/>10.4.1 Sesquioxide (Such as Y2O3, Gd2O3, and Lu2O3) 293<br/><br/>10.4.2 Gd2O2S (GOS) 294<br/><br/>10.4.3 Garnet Materials (Such as YAG, LuAG, and GAGG) 294<br/><br/>10.4.4 Lu2SiO5 (LSO) 296<br/><br/>10.4.5 SrHfO3 296<br/><br/>10.4.6 La2Zr2O7 and La2Hf2O7 296<br/><br/>10.4.7 ZnO 296<br/><br/>10.4.8 BaF2 297<br/><br/>10.4.9 CeF3 298<br/><br/>10.4.10 CsBr 299<br/><br/>10.4.11 LaBr3 299<br/><br/>10.4.12 SrI2 300<br/><br/>10.5 Transparent Ceramics for Dosimeter 300<br/><br/>10.5.1 Al2O3 300<br/><br/>10.5.2 CaF2 302<br/><br/>10.5.3 MgO 302<br/><br/>10.5.4 MgF2 303<br/><br/>10.5.5 CsBr 304<br/><br/>10.5.6 Y3Al5-xGaxO12 (YAGG) 305<br/><br/>References 306<br/><br/>11 Luminescence in Glass-Based Materials by Ionizing Radiation 311<br/>Hirokazu Masai and Kenji Shinozaki<br/><br/>11.1 Introduction 311<br/><br/>11.2 Structural and Physical Properties of Glass 312<br/><br/>11.3 Attenuation of Quantum Beam as Shielding Materials 320<br/><br/>11.4 Defect Formation in Oxide Glass by Quantum Beam Irradiation 320<br/><br/>11.5 Scintillation in Oxide Glass 323<br/><br/>11.5.1 Glass Scintillators for X-Ray and γ-Ray 323<br/><br/>11.5.2 Glass Scintillators for Neutrons 325<br/><br/>11.5.3 Storage Luminescence in Glass 328<br/><br/>11.6 Scintillation and Dosimetry in Non-oxide Glass 329<br/><br/>11.7 Preparation of Glass 335<br/><br/>11.7.1 Melt Process 335<br/><br/>11.7.2 Vapor Process and Fiber Drawing 337<br/><br/>11.7.3 Liquid Process 338<br/><br/>11.8 Future Prospectives for Glass-Based Materials 338<br/><br/>Acknowledgement 339<br/><br/>References 339<br/><br/>12 Detectors Using Radiation Induced Luminescence 347<br/>Kenichi Watanabe<br/><br/>12.1 Introduction 347<br/><br/>12.2 General Issues to Manufacturing the Detector 349<br/><br/>12.3 Scintillation Detectors for Gamma-Rays and X-Rays 352<br/><br/>12.3.1 Gamma-Ray Spectrometer 352<br/><br/>12.3.2 Survey Meter and Area Monitor 356<br/><br/>12.3.3 Scintillation Detectors for Medical Applications 358<br/><br/>12.3.4 Scintillation Detectors for Other Applications 364<br/><br/>12.4 Scintillation Detectors for Charged Particles 366<br/><br/>12.5 Scintillation Detectors for Neutrons 368<br/><br/>12.5.1 Thermal Neutron Detectors 368<br/><br/>12.5.2 Fast Neutron Detectors 377<br/><br/>12.6 Personal Dosimeters 380<br/><br/>12.6.1 TL-Based Dosimetry System 380<br/><br/>12.6.2 OSL-Based Dosimetry System 381<br/><br/>12.6.3 RPL-Based Dosimetry System 382<br/><br/>12.7 OSL-Based Imaging System 383<br/><br/>References 384<br/><br/>Index 387
520 ## - SUMMARY, ETC.
Summary, etc In Phosphors for Radiation Detection, accomplished researchers Takayuki Yanagida and Masanori Koshimizu deliver a state-of-the-art exploration of the use of phosphors in radiation detection. The internationally recognized contributors discuss the fundamental physics and detector functions associated with the technology with a focus on real-world applications. The book discusses all forms of luminescence phosphors for radiation detection used in a variety of fields, including medicine, security, resource exploration, environmental monitoring, and high energy physics. Readers will discover discussions of dosimeter materials, including thermally stimulated luminescent materials, optically stimulated luminescent materials, and radiophotoluminescence materials. The book also covers transparent ceramics and glasses and a broad range of devices used in this area.
545 0# - BIOGRAPHICAL OR HISTORICAL DATA
Biographical or historical note About the Author<br/><br/>Edited by<br/><br/>Takayuki Yanagida, PhD, is Professor at the Graduate School of Materials Science, Nara Institute of Science and Technology in Japan. He obtained his doctorate from the University of Tokyo. His research interests include inorganic crystal, transparent ceramic, and glass phosphors.<br/><br/>Masanori Koshimizu is Associate Professor at the Graduate School of Engineering at Tohoku University. He has authored over 160 papers in the fields of Applied Chemistry and Quantum Physical Chemistry<br/><br/>Series Editors<br/><br/>Arthur Willoughby University of Southampton, Southampton, UK<br/><br/>Peter Capper Ex-Leonardo MW Ltd, Southampton, UK<br/><br/>Safa Kasap University of Saskatchewan, Saskatoon, Canada
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Radiation
General subdivision Measurement
-- Instruments.
Authority record control number http://id.loc.gov/authorities/subjects/sh88007693.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Radiation
General subdivision Measurement.
Authority record control number http://id.loc.gov/authorities/subjects/sh85110345.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Phosphors
Authority record control number http://id.loc.gov/authorities/subjects/sh85101117
General subdivision Industrial applications.
Authority record control number http://id.loc.gov/authorities/subjects/sh00006117.
655 #4 - INDEX TERM--GENRE/FORM
Genre/form data or focus term Electronic books.
700 1# - ADDED ENTRY--PERSONAL NAME
Personal name Koshimizu, Masanori,
Relator term editor.
700 1# - ADDED ENTRY--PERSONAL NAME
Personal name Yanagida, Takayuki,
Relator term editor.
776 08 - ADDITIONAL PHYSICAL FORM ENTRY
Display text Print version:
Main entry heading Koshimizu, Masanori, author.
Title Phosphors for radiation detectors
International Standard Book Number 9781119583325
Record control number (OCoLC)1285704868.
856 40 - ELECTRONIC LOCATION AND ACCESS
Uniform Resource Identifier https://onlinelibrary.wiley.com/doi/book/10.1002/9781119583363
Link text Full text available at Wiley Online Library Click here to view
942 ## - ADDED ENTRY ELEMENTS
Source of classification or shelving scheme
Item type EBOOK
Holdings
Withdrawn status Lost status Source of classification or shelving scheme Damaged status Not for loan Permanent Location Current Location Date acquired Source of acquisition Full call number Date last seen Price effective from Item type
          COLLEGE LIBRARY COLLEGE LIBRARY 2024-09-12 Megatexts Phil. Inc. 539.77 P5662 2022 2024-09-12 2024-09-12 EBOOK

Powered by Koha