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Titlebook: Deformation of Ceramic Materials II; Richard E. Tressler (Professor and Chairman of Cer Book 1984 Springer Science+Business Media New York

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Structure of Dislocations in Oxides the present paper which show that the climb dissociated configuration has a slightly lower,energy than the glide configuration and that the latter is metastable with respect to the former. Other factors influencing the structure and behavior of dislocations are discussed.
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Slip Systems in Manganese Zinc Ferrite Crystals in behavior from the aluminate spinels which have a much larger range of defect concentrations. TEM examination of deformed specimens revealed a 3-D network of dislocations as a consequence of easy climb under these conditions.
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https://doi.org/10.1007/978-3-662-30020-6 Oxygen lattice diffusion data were obtained for these crystals from loop annealing experiments. A significant doping effect is observed on the diffusion kinetics, which in turn accounts for the change in loop density in the microstructure.
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Dislocation Dynamics in Silicon under High Stress being difficult to work with. From the strongly localized bonding it follows that dislocation cores should be narrow and kinks should be sharp. Because breaking and reestablishing covalent bonds is necessary to move a dislocation by any mechanism, the Peierls potential (P.) will be prominent as wel
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Kink Mobility and Dislocation Velocity in Covalent Crystalsnium [1–8], silicon [9–12] and some compound semiconductors [13–15]. It is well established that the dislocation velocity is exponentially dependent on temperature and approximately linear on stress for stresses τ≳ 20 MPa. From theoretical calculations [16–19] follows that this behavior can be expla
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