High-intensity X-rays - interaction with matter: processes in plasmas, clusters, molecules, and solids
Gespeichert in:
1. Verfasser: | |
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Format: | Buch |
Sprache: | English |
Veröffentlicht: |
Weinheim
Wiley-VCH
2011
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Schlagworte: | |
Online-Zugang: | Inhaltstext Inhaltsverzeichnis |
Beschreibung: | XV, 269 S. Ill., graph. Darst. |
ISBN: | 9783527409471 3527409475 |
Internformat
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IMAGE 1
CONTENTS
PREFACE XIII
1 INTRODUCTION 1
1.1 EXAMPLES FOR THE APPLICATION OF X-RAY-MATTER INTERACTION 3 1.1.1
MEDICAL IMAGING WITH X RAYS 4 1.1.2 X-RAY SCATTERING AND SPECTROSCOPY 5
1.1.3 SHORT-PULSE X-RAY PROBING OF MATTER 7
1.2 ELECTROMAGNETIC SPECTRUM 7 1.3 X-RAY LIGHT SOURCES 9
1.3.1 X-RAY TUBES 9 1.3.2 LASER-PRODUCED X-RAY SOURCES 10 1.3.3 X-RAY
LASERS 11 1.3.4 Z-PINCH 12
1.3.5 NOVEL X-RAY SOURCE CAPABILITIES 13 1.4 FUNDAMENTAL MODELS TO
DESCRIBE X-RAY-MATTER INTERACTION 14 1.4.1 MAXWELL EQUATIONS 14 1.4.2
RELATION OF MAXWELL EQUATIONS TO QUANTUM ELECTRODYNAMICS
AND THE SEMIDASSICAL TREATMENT 17 1.5 INTRODUCTION TO X-RAY-MATTER
INTERACTION PROCESSES 19 1.5.1 ATOMIC AND ELECTRONIC X-RAY-MATTER
INTERACTION PROCESSES 19 1.5.2 ENERGY AND TIME SCALES 21 1.5.3 LENGTH
SCALES 22 1.5.4 SIZE EFFECTS 24
1.6 DATABASES RELEVANT TO PHOTON-MATTER INTERACTION 24 REFERENCES 25
2 ATOMIC PHYSICS 29
2.1 ATOMIC STATES 29
2.1.1 CENTER-OF-MASS MOTION 30 2.1.2 CONSTANTS OF MOTION 31 2.1.3 ATOMS
WITH A SINGLE ELECTRON 32 2.1.3.1 ONE-BODY SCHROEDINGER EQUATION 32
2.1.3.2 THE RADIAL SCHROEDINGER EQUATION 32
BIBLIOGRAFISCHE INFORMATIONEN HTTP://D-NB.INFO/101120021X
DIGITALISIERT DURCH
IMAGE 2
CONTENTS
2.1.3.3 THE SCHROEDINGER EQUATION AS THE NONRELATIVISTIC LIMIT OF THE
DIRAC EQUATION 33 2.1.4 ATOMS WITH MULTIPLE ELECTRONS 36 2.1.5 THE
PERIODIC SYSTEM OF THE ELEMENTS 37
2.1.6 SCREENED HYDROGENIC MODEL 39 2.1.6.1 SEMIDASSICAL APPROXIMATION
(WKB METHOD) 40 2.1.6.2 SEMIDASSICAL APPROXIMATION FOR SINGLE ELECTRONS
IN A CENTRALLY SYMMETRIC FIELD 41 2.1.6.3 THE SCREENED HYDROGENIC
IONIZATION MODEL 43 2.2 ATOMIC PROCESSES 44
2.2.1 INTERACTION OF ATOMS WITH PHOTONS 45 2.2.1.1 QUANTIZATION OF FREE
ELECTROMAGNETIC FIELDS 46 2.2.1.2 DIPOLE APPROXIMATION IN THE X-RAY
REGIME 48 2.2.1.3 PRINDPLE OF DETAILED BALANCE 48 2.2.2 RADIATIVE
EXDTATION AND SPONTANEOUS DECAY 49 2.2.3 PHOTOIONIZATION AND RADIATIVE
RECOMBINATION 51 2.2.4 ELECTRON IMPACT IONIZATION AND THREE-BODY
RECOMBINATION 52 2.2.5 ELECTRON IMPACT EXDTATION AND DEEXCITATION 53
2.2.6 AUTOIONIZATION AND DIELECTRONIC RECOMBINATION 54 2.2.7 SHAKE
PROCESSES 55 2.3 EFFECT OF PLASMA ENVIRONMENT 56 2.3.1 MODIFICATION OF
ATOMIC STRUCTURE 57
2.3.1.1 PHYSICAL MODELS 57 2.3.1.2 CHEMICAL MODELS 57 2.3.1.3 ENERGY
LEVEL SHIFTS 58
2.3.2 MODIFICATION OF ATOMIC PROCESSES 59 REFERENCES 59
3 SCATTERING OF X-RAY RADIATION 61 3.1 SCATTERING BY FREE CHARGES 62
3.1.1 CLASSICAL DESCRIPTION (THOMSON FORMULA) 61
3.1.2 RELATIVISTIC QUANTUM-MECHANICAL DESCRIPTION (KLEIN-NISHINA
FORMULA) 63 3.2 SCATTERING BY ATOMS AND IONS 64 3.2.1 QUANTUM-MECHANICAL
TREATMENT OF SCATTERING 64 3.2.1.1 SCATTERING BY ATOMS 65 3.2.1.2
TABULATED ATOMIC STRUCTURE FACTORS 68 3.3 SCATTERING BY GASES, LIQUIDS,
AND AMORPHOUS SOLIDS 69 3.4 SCATTERING BY PLASMAS 73
3.5 SCATTERING BY CRYSTALS 76
3.5.1 KINEMATIC DIFFRACTION BY CRYSTALS 77 3.5.1.1 DIFFRACTION BY A
LATTICE OF FINITE VOLUME 77 3.5.1.2 STRUCTURE FACTORS FOR MONOATOMIC
CRYSTALS 79 3.5.1.3 FINITE TEMPERATURE 81 3.5.1.4 EXPERIMENTAL
CONFIGURATIONS 82
IMAGE 3
CONTENTS
3.5.2 DYNAMICAL DIFFRACTION BY CRYSTALS 83
3.5.2.1 DIFFRACTION FROM A SINGLE LAYER OF ATOMS 84 3.5.2.2 KINEMATICAL
DIFFRACTION FROM SEVERAL LAYERS OF ATOMS 85 3.5.2.3 INDEX OF REFRACTION
87 3.5.2.4 REFLECTION FROM A PERFECT CRYSTAL 88
REFERENCES 90
4 ELECTROMAGNETIC WAVE PROPAGATION 93 4.1 ELECTROMAGNETIC WAVES IN
MATTER 93 4.1.1 SCALAR WAVE PROPAGATION 95 4.1.2 LASER MODES 96
4.2 REFLECTION AND REFRACTION AT INTERFACES 97 4.2.1 ELECTROMAGNETIC
FIELD IN THE REFLECTING MEDIUM 300 4.2.2 POLARIZATION BY REFLECTION 100
4.2.3 CRITICAL ANGLE 102 4.2.4 EVANESCENT WAVES FOR GRAZING-INDDENCE
REFLECTION 103 4.3 REFLECTION BY THIN FILMS, BILAYERS, AND MULTILAYERS
105 4.3.1 OPTICAL PROPERTIES OF A MULTILAYER STACK 105
4.3.2 FIELD INTENSITY IN THE MULTILAYER STACK 107 4.3.3 MULTILAYERS IN
THE X-RAY REGIME 107 4.3.4 REFLECTION BY THIN FILMS AND BILAYERS 110 4.4
DISPERSIVE INTERACTION OF WAVEPACKETS WITH MATERIALS 111 4A.I
INTERACTION WITH OPTICAL ELEMENTS 113 4.5 KRAMERS-KRONIG RELATION 114
REFERENCES 115
5 ELECTRON DYNAMICS 117
5.1 TRANSITION OF SOLIDS INTO PLASMAS 118 5.2 DIRECTIONAL EMISSION OF
PHOTOELECTRONS 119 5.3 ELECTRON SCATTERING 122
5.3.1 ELASTIC ELECTRON SCATTERING 124 5.3.1.1 ELASTIC SCATTERING OF FAST
ELECTRONS 125 5.3.1.2 ELASTIC SCATTERING OF SLOW ELECTRONS 126
5.3.1.3 ELASTIC SCATTERING IN SOLIDS 126 5.3.2 INELASTIC ELECTRON
SCATTERING 128 5.3.2.1 INELASTIC SCATTERING OF FAST ELECTRONS 128
5.3.2.2 INELASTIC SCATTERING OF SLOW ELECTRONS 128
5.4 ENERGY LOSS MECHANISMS 130 5.4.1 ENERGY LOSS THROUGH PLASMON
EXCITATION 130 5.4.2 ENERGY LOSS THROUGH PHONON EXCITATION 131 5.5
ELECTRON DYNAMICS IN PLASMAS 132 5.6 STATISTICAL DESCRIPTION OF ELECTRON
DYNAMICS 132 5.7 BREMSSTRAHLUNG EMISSION AND INVERSE BREMSSTRAHLUNG
ABSORPTION 133 5.7.1 ELECTRON-ION BREMSSTRAHLUNG 133
5.7.2 ELECTRON-ELECTRON BREMSSTRAHLUNG 134 5.7.3 INVERSE BREMSSTRAHLUNG
ABSORPTION 134
IMAGE 4
CONTENTS
5.8 CHARGE TRAPPING IN SMALL OBJECTS 135
5.8.1 CHARGE TRAPPING IN SOLID, SPHERICAL OBJECTS 135 5.8.2 CHARGE
TRAPPING IN SEMI-INFINITE OBJECTS AND THIN FILMS 136 REFERENCES 138
6 SHORT X-RAY PULSES 141
6.1 CHARACTERISTICS OF SHORT X-RAY PULSES 142 6.1.1 COHERENCE AND PHOTON
STATISTICS 142 6.1.2 CHIRPED X-RAY PULSES 143 6.1.3 BANDWIDTH-LIMITED
X-RAY PULSES 144
6.1.4 PROPAGATION IN FREE SPACE 146 6.2 GENERATING SHORT X-RAY PULSES
147 6.2.1 SHORT-PULSE X-RAY SOURCES 147 6.2.1.1 HIGH-HARMONIC GENERATION
148 6.2.1.2 THOMSON SCATTERING 148 6.2.1.3 ULTRAFAST X-RAY TUBES 148
6.2.1.4 LASER PLASMA SOURCES 149 6.2.1.5 SYNCHROTRONS 149 6.2.1.6 ENERGY
RECOVERY LINACS 151 6.2.1.7 X-RAY FREE-ELECTRON LASERS 151 6.2.2 REDUDNG
PULSE LENGTHS THROUGH TIME-SLIRING 153 6.2.3 REDUCING PULSE LENGTH
THROUGH PULSE COMPRESSION 154 6.2.4 GENERATING ULTRASHORT X-RAY PULSES
155 6.3 CHARACTERIZING SHORT X-RAY PULSES 155 6.3.1 X-RAY STREAK CAMERAS
156 6.3.2 CORRELATION METHODS 156
6.3.3 EXAMPLES 157 6.4 CHARACTERISTIC TIME SCALES IN MATTER 158 6.5
SHORT-PULSE X-RAY-MATTER INTERACTION PROCESSES 159 6.5.1 ATOMIC
PROCESSES 160
6.5.2 FAST STRUCTURAL CHANGES 160 6.6 SINGLE-PULSE X-RAY OPTICS 162
REFERENCES 164
7 HIGH-INTENSITY EFFECTS IN THE X-RAY REGIME 169 7.1 INTENSITY AND
ELECTRIC FIELD OF INTENSE X-RAY SOURCES 170 7.2 HIGH-X-RAY-INTENSITY
EFFECTS IN ATOMS 171 7.2.1 MULTIPHOTON ABSORPTION 172 7.2.1.1
MULTIPHOTON ABSORPTION CROSS SECTION 172 7.2.1.2 TWO-PHOTON ABSORPTION
BY HYDROGEN 172 7.2.2 TUNNELING IONIZATION 174 7.2.3 ONSET OF STRONG
PHOTON-FIELD EFFECTS 175 7.2.4 MULTIPLE IONIZATION AND HOLLOW ATOMS 176
7.2.5 STABILIZATION OF ATOMS 176 7.3 NONLINEAR OPTICS 178
7.3.1 NONLINEAR OPTICS IN THE VISIBLE REGIME 178
IMAGE 5
CONTENTS
7.3.2 NONLINEAR OPTICS IN THE X-RAY REGIME 179
7.3.2.1 NONLINEAR OPTICS WITH QUASI-FREE ELECTRONS 179 7.3.2.2 MAGNITUDE
OF NONLINEAR EFFECTS IN THE X-RAY REGIME 182 7.4 HIGH-INTENSITY EFFECTS
IN PLASMAS 182 7.4.1 PLASMA WAKEFIELD ACCELERATORS 183 7.4.2 PLASMA
INSTABILITIES AT HIGH INTENSITIES 183 7.5 HIGH-FIELD PHYSICS 184
7.5.1 HIGH-INTENSITY QED EFFECTS: PAIR PRODUCTION 185 7.5.2 EXPERIMENTAL
VERIFICATION OF QUANTUM FIELD THEORY 286 REFERENCES 187
8 DYNAMICS OF X-RAY-LRRADIATED MATERIALS 292 8.1 X-RAY-MATTER
INTERACTION TIME SCALES 191 8.2 THE INFLUENCE OF X-RAY HEATING ON
ABSORPTION 292 8.2.1 TEMPERATURE-DEPENDENCE OF X-RAY ABSORPTION 192
8.2.2 TIME DEPENDENCE OF X-RAY-MATTER INTERACTION 195
8.2.3 PULSE LENGTH DEPENDENCE OF X-RAY ABSORPTION 196 8.3 THERMODYNAMICS
OF PHASE TRANSFORMATION 199 8.3.1 SOLID-LIQUID TRANSITIONS 200 8.3.2
LIQUID-GAS TRANSITION 202
8.3.3 SOLID-GAS TRANSITION 202 8.3.4 EXAMPLE PHASE DIAGRAM 203 8.4
ABLATION 203
8.5 INTENSITY DEPENDENCE OF X-RAY-MATTER INTERACTION 205 8.5.1
INTERACTION OF SHORT X-RAY PULSES WITH CRYSTALS 207 8.6 X-RAY-INDUCED
MECHANICAL DAMAGE 207 8.7 X-RAY DAMAGE IN INERTIAL CONFINEMENT FUSION
208 8.8 X-RAY DAMAGE IN SEMICONDUCTORS 209 8.8.1 X-RAY DAMAGE IN
SEMICONDUCTOR PROCESSING 209 8.8.2 X-RAY-DAMAGE-RESISTANT SEMICONDUCTORS
209 8.9 DAMAGE TO BIOMOLECULES IN X-RAY IMAGING 210
REFERENCES 212
9 SIMULATION OF X-RAY-MATTER INTERACTION 215 9.1 MODELS FOR DIFFERENT
TIME- AND LENGTH SCALES 215 9.2 ATOMISTIC MODELS 216
9.2.1 MOLECULAR DYNAMICS AND PARTIDE-IN-CELL MODELS 217 9.2.1.1
MOLECULAR DYNAMICS MODELS 217 9.2.1.2 PARTIDE-IN-CELL METHOD 218
9.2.1.3 HYBRID METHODS 218 9.2.1.4 QUANTUM MOLECULAR DYNAMICS MODELS 219
9.2.2 MONTE CARLO MODELS 219 9.2.2.1 MONTE CARLO METHODS TO SAMPLE PHASE
SPACE 220 9.2.2.2 MONTE CARLO METHODS TO SAMPLE PARTIDE TRAJECTORIES 220
9.3 STATISTICAL KINETICS MODELS 224 9.3.1 KINETICS EQUATIONS 224
IMAGE 6
CONTENTS
9.3.1.1 KLIMONTOVICH DISTRIBUTION 224
9.3.1.2 LIOUVILLE DISTRIBUTION 225 9.3.1.3 BBGKY HIERARCHY 225 9.3.1.4
BOLTZMANN AND VLASOV EQUATION 226 9.3.1.5 FOKKER-PLANCK EQUATION 227
9.3.2 ATOMIC KINETICS 228 9.3.3 USING STATISTICAL KINETICS MODELS TO
DESCRIBE X-RAY-MATTER INTERACTION 228 9.4 HYDRODYNAMIC MODELS 229 9.4.1
FLUID MODELS 229 9.4.2 USING HYDRODYNAMIC MODELS TO DESCRIBE
X-RAY-MATTER INTERACTION 233
REFERENCES 235
10 EXAMPLES OF X-RAY-MATTER INTERACTION 239 10.1 INTERACTION OF INTENSE
X-RAY RADIATION WITH ATOMS AND MOLECULES 239 10.2 INTERACTION OF INTENSE
X-RAY PULSES WITH ATOMIC CLUSTERS 240 10.2.1 INTERACTION OF CLUSTERS
WITH HIGH-INTENSITY 12.7-EV RADIATION 241 10.2.2 INTERACTION OF CLUSTERS
WITH HIGH-INTENSITY 40- TO 100-EV RADIATION 242 10.2.3 INTERACTION OF
CLUSTERS WITH HIGH-INTENSITY HARD X-RAY RADIATION 243 10.3 BIOLOGICAL
IMAGING 245 10.3.1 IMAGE FORMATION 245 10.3.2 PROTEIN X-RAY
CRYSTALLOGRAPHY 246
10.3.3 COHERENT DIFFRACTIVE IMAGING 247 10.3.3.1 DYNAMIC DAMAGE LIMITS
249 10.3.3.2 COHERENT DIFFRACTIVE IMAGING AT X-RAY FREE-ELECTRON LASERS
250 10.3.4 OUTLOOK 250 10.4 X-RAY SCATTERING DIAGNOSTICS OF DENSE
PLASMAS 252 10.4.1 EXPERIMENTAL SETUPS 252 10.4.2 COLLECTIVE AND
NONCOLLECTIVE SCATTERING 254 10.4.3 THEORETICAL DESCRIPTION OF INELASTIC
X-RAY SCATTERING 255
REFERENCES 256
INDEX 263 |
any_adam_object | 1 |
author | Hau-Riege, Stefan P. |
author_facet | Hau-Riege, Stefan P. |
author_role | aut |
author_sort | Hau-Riege, Stefan P. |
author_variant | s p h r sph sphr |
building | Verbundindex |
bvnumber | BV039667320 |
classification_rvk | UM 2280 |
ctrlnum | (OCoLC)725141729 (DE-599)DNB101120021X |
dewey-full | 539.7222 |
dewey-hundreds | 500 - Natural sciences and mathematics |
dewey-ones | 539 - Modern physics |
dewey-raw | 539.7222 |
dewey-search | 539.7222 |
dewey-sort | 3539.7222 |
dewey-tens | 530 - Physics |
discipline | Physik |
format | Book |
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id | DE-604.BV039667320 |
illustrated | Illustrated |
indexdate | 2024-07-21T00:14:18Z |
institution | BVB |
isbn | 9783527409471 3527409475 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-024516563 |
oclc_num | 725141729 |
open_access_boolean | |
owner | DE-11 DE-83 DE-19 DE-BY-UBM DE-20 |
owner_facet | DE-11 DE-83 DE-19 DE-BY-UBM DE-20 |
physical | XV, 269 S. Ill., graph. Darst. |
publishDate | 2011 |
publishDateSearch | 2011 |
publishDateSort | 2011 |
publisher | Wiley-VCH |
record_format | marc |
spelling | Hau-Riege, Stefan P. Verfasser aut High-intensity X-rays - interaction with matter processes in plasmas, clusters, molecules, and solids Stefan P. Hau-Riege Weinheim Wiley-VCH 2011 XV, 269 S. Ill., graph. Darst. txt rdacontent n rdamedia nc rdacarrier Röntgenstrahlung (DE-588)4129728-3 gnd rswk-swf Wechselwirkung (DE-588)4064937-4 gnd rswk-swf Materie (DE-588)4037940-1 gnd rswk-swf Röntgenstrahlung (DE-588)4129728-3 s Materie (DE-588)4037940-1 s Wechselwirkung (DE-588)4064937-4 s DE-604 X:MVB text/html http://deposit.dnb.de/cgi-bin/dokserv?id=3718059&prov=M&dok_var=1&dok_ext=htm Inhaltstext DNB Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=024516563&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Hau-Riege, Stefan P. High-intensity X-rays - interaction with matter processes in plasmas, clusters, molecules, and solids Röntgenstrahlung (DE-588)4129728-3 gnd Wechselwirkung (DE-588)4064937-4 gnd Materie (DE-588)4037940-1 gnd |
subject_GND | (DE-588)4129728-3 (DE-588)4064937-4 (DE-588)4037940-1 |
title | High-intensity X-rays - interaction with matter processes in plasmas, clusters, molecules, and solids |
title_auth | High-intensity X-rays - interaction with matter processes in plasmas, clusters, molecules, and solids |
title_exact_search | High-intensity X-rays - interaction with matter processes in plasmas, clusters, molecules, and solids |
title_full | High-intensity X-rays - interaction with matter processes in plasmas, clusters, molecules, and solids Stefan P. Hau-Riege |
title_fullStr | High-intensity X-rays - interaction with matter processes in plasmas, clusters, molecules, and solids Stefan P. Hau-Riege |
title_full_unstemmed | High-intensity X-rays - interaction with matter processes in plasmas, clusters, molecules, and solids Stefan P. Hau-Riege |
title_short | High-intensity X-rays - interaction with matter |
title_sort | high intensity x rays interaction with matter processes in plasmas clusters molecules and solids |
title_sub | processes in plasmas, clusters, molecules, and solids |
topic | Röntgenstrahlung (DE-588)4129728-3 gnd Wechselwirkung (DE-588)4064937-4 gnd Materie (DE-588)4037940-1 gnd |
topic_facet | Röntgenstrahlung Wechselwirkung Materie |
url | http://deposit.dnb.de/cgi-bin/dokserv?id=3718059&prov=M&dok_var=1&dok_ext=htm http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=024516563&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT hauriegestefanp highintensityxraysinteractionwithmatterprocessesinplasmasclustersmoleculesandsolids |