| General Properties of Dislocation Motion | |
| Introduction | p. 3 |
| Theoretical Yield Strength | p. 4 |
| Plastic Shear by the Motion of Dislocations | p. 5 |
| Experimental Methods | p. 11 |
| Macroscopic Deformation Tests | p. 11 |
| Stress Pulse Double Etching Technique | p. 16 |
| Transmission Electron Microscopy | p. 18 |
| In Situ Straining Experiments in the Transmission Electron Microscope | p. 20 |
| Other Methods | p. 26 |
| X-Ray Topography In Situ Deformation Experiments | p. 27 |
| Surface Studies of Slip Lines | p. 27 |
| Internal Friction | p. 29 |
| Nuclear Magnetic Resonance | p. 33 |
| Properties of Dislocations | p. 35 |
| Geometric Properties | p. 35 |
| Burgers Vector | p. 35 |
| Glide and Climb Motion of a Dislocation | p. 37 |
| Relation Between Dislocation Motion and Plastic Strain and Strain Rate | p. 39 |
| Elastic Properties of Dislocations | p. 40 |
| Stress Fields of Straight Dislocations | p. 41 |
| Dislocation Energy | p. 43 |
| Forces on Dislocations | p. 47 |
| Interaction Between Parallel Dislocations | p. 50 |
| Interaction Between Nonparallel Dislocations | p. 52 |
| Elastic Interaction Between Dislocations and Elastic Inclusions | p. 54 |
| Bowed-Out Dislocations | p. 57 |
| Dislocations in Crystals | p. 65 |
| Selection of Burgers Vectors | p. 66 |
| Stacking Faults and Partial Dislocations | p. 66 |
| Twins | p. 70 |
| Antiphase Boundaries | p. 71 |
| Dislocation Motion | p. 73 |
| Thermally Activated Overcoming of Barriers | p. 74 |
| Lattice Friction | p. 78 |
| Peierls-Nabarro Model | p. 79 |
| Double-Kink Model | p. 83 |
| Characteristics and Experimental Evidence of the Double-Kink Model | p. 92 |
| Slip and Cross Slip | p. 93 |
| The Locking-Unlocking Mechanism | p. 99 |
| Overcoming of Localized Obstacles | p. 101 |
| Friedel Statistics | p. 103 |
| Mott Statistics | p. 110 |
| Transition from the Double-Kink Mechanism to the Overcoming of Localized Obstacles | p. 113 |
| Overcoming of Extended Obstacles | p. 116 |
| Dislocation Intersections | p. 126 |
| Dislocation Motion at High Velocities and Low Temperatures | p. 129 |
| Dislocation Climb | p. 132 |
| Point Defect Equilibrium Concentrations | p. 132 |
| Climb Forces | p. 134 |
| Emission- or Absorption-controlled Climb | p. 137 |
| Diffusion-controlled Climb | p. 140 |
| Jog Dragging | p. 141 |
| Drag Forces due to Point Defect Atmospheres | p. 143 |
| Dynamic Laws of Dislocation Mobility | p. 150 |
| Dislocation Kinetics, Work-Hardening, and Recovery | p. 155 |
| Dislocation Kinetics | p. 155 |
| Models of Dislocation Generation | p. 156 |
| Experimental Evidence of Dislocation Generation | p. 162 |
| Dislocation Immobilization and Annihilation | p. 166 |
| Work-Hardening and Recovery | p. 171 |
| Work-Hardening Models | p. 172 |
| Thermal and Athermal Components of the Flow Stress | p. 180 |
| Experimental Determination of the Stress Components | p. 187 |
| Steady State Deformation | p. 192 |
| Plastic Instabilities | p. 196 |
| Dislocation Motion in Particular Materials | |
| Semiconductors | p. 207 |
| Crystal Structure and Slip Geometry | p. 207 |
| Microscopic Observations | p. 209 |
| Dislocation Dynamics | p. 213 |
| Recombination-enhanced Dislocation Mobility | p. 217 |
| Macroscopic Deformation Properties | p. 218 |
| Summary | p. 220 |
| Ceramic Single Crystals | p. 221 |
| Alkali Halides | p. 221 |
| Crystal Structure and Slip Geometry | p. 222 |
| Dislocation Dynamics | p. 223 |
| Macroscopic Deformation Properties | p. 223 |
| Summary | p. 229 |
| Magnesium Oxide | p. 231 |
| Microscopic Observations | p. 231 |
| Statistics of Overcoming Localized Obstacles | p. 234 |
| Kinematics of Overcoming Localized Obstacles | p. 239 |
| Dislocation Dynamics | p. 242 |
| Macroscopic Deformation Properties and Discussion | p. 243 |
| Dislocations in the Plastic Zone of a Crack | p. 249 |
| Summary | p. 252 |
| Zirconia Single Crystals | p. 253 |
| Crystal Structure and Slip Geometry of ZrO2-Y2O3 alloys | p. 253 |
| Microscopic Observations in Cubic ZrO2 | p. 254 |
| Dislocation Dynamics in Cubic ZrO2 | p. 260 |
| Macroscopic Deformation Properties of Cubic ZrO2 | p. 261 |
| Deformation Mechanisms | p. 263 |
| Summary of Cubic ZrO2 | p. 273 |
| Tetragonal ZrO2 | p. 273 |
| Metallic Alloys | p. 281 |
| Precipitation Hardened Aluminium Alloys | p. 281 |
| Al-Zn-Mg | p. 282 |
| Al-Ag | p. 285 |
| Al-Li | p. 287 |
| Summary | p. 293 |
| Dislocation Generation in Metals | p. 293 |
| Oxide Dispersion Strengthened Materials | p. 297 |
| Microscopic Observations in Oxide Dispersion Strengthened Alloys | p. 298 |
| Macroscopic Deformation Properties | p. 303 |
| Deformation Mechanisms | p. 304 |
| Summary | p. 308 |
| Plastic Deformation During Fracture Of Al2O3/Nb Sandwich Specimens | p. 309 |
| Intermetallic Alloys | p. 313 |
| Introduction | p. 313 |
| Ni3Al | p. 316 |
| Microscopic Observations and Dislocation Dynamics | p. 316 |
| Models of the Flow Stress Anomaly | p. 319 |
| -TiAl | p. 322 |
| Crystal Structure and Slip Geometry | p. 323 |
| Microscopic Observations | p. 324 |
| Macroscopic Deformation Parameters | p. 331 |
| Deformation Mechanisms | p. 333 |
| Summary | p. 340 |
| NiAl | p. 340 |
| Crystal Structure and Slip Geometry | p. 340 |
| Microscopic Observations | p. 341 |
| Macroscopic Deformation Parameters | p. 346 |
| Deformation Mechanisms | p. 348 |
| Summary | p. 355 |
| FeAl | p. 355 |
| Microscopic Observations | p. 355 |
| Macroscopic Deformation Parameters | p. 360 |
| Deformation Mechanisms | p. 362 |
| Summary | p. 368 |
| Molybdenum Disilicide | p. 369 |
| Crystal Structure and Slip Geometry | p. 369 |
| Microscopic Observations | p. 370 |
| Macroscopic Deformation Parameters | p. 380 |
| Deformation Mechanisms | p. 383 |
| Summary | p. 389 |
| Concisions on Intermetallics | p. 390 |
| Quasicrystals | p. 393 |
| Structure of Quasicrystals | p. 394 |
| Quasicrystals with Icosahedral Symmetry | p. 396 |
| Quasicrystals with Decagonal Symmetry | p. 398 |
| Defects in Quasicrystals | p. 400 |
| Vacancies | p. 400 |
| Phason Defects | p. 400 |
| Dislocations | p. 403 |
| Microscopic Observations of Dislocations | p. 408 |
| i-Al-Pd-Mn | p. 408 |
| d-Al-Ni-Co | p. 422 |
| Macroscopic Deformation Parameters | p. 431 |
| i-Al-Pd-Mn | p. 432 |
| d-Al-Ni-Co | p. 438 |
| Mechanisms of Dislocation Motion and Plastic Deformation | p. 440 |
| Glide or Climb Motion of Dislocations | p. 441 |
| Components of the Flow Stress | p. 443 |
| Formation of Phason Faults | p. 443 |
| Long-Range Dislocation Interactions | p. 445 |
| Activation Parameters of Plastic Deformation | p. 446 |
| Friction Mechanisms of Dislocation Motion | p. 448 |
| Dislocation Kinetics in the High-Temperature Range | p. 453 |
| The Climb-Exchange Model | p. 455 |
| Conclusions on Quasicrystals | p. 459 |
| Conclusion | p. 463 |
| List of Abbreviations and Symbols | p. 465 |
| List of Video Clips | p. 471 |
| References | p. 475 |
| Index | p. 499 |
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