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David J. Srolovitz

Researcher at City University of Hong Kong

Publications -  557
Citations -  30310

David J. Srolovitz is an academic researcher from City University of Hong Kong. The author has contributed to research in topics: Grain boundary & Dislocation. The author has an hindex of 87, co-authored 540 publications receiving 27162 citations. Previous affiliations of David J. Srolovitz include Los Alamos National Laboratory & University of Pennsylvania.

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First-principles study of the α-Al2O3(0001)/Cu(111) interface

TL;DR: In this paper, the authors found that Al2O3(0001) relaxation effects can lower the work of adhesion by over a factor of 3, which is in reasonably good agreement with experiment, being somewhat larger than expected from the assumption of a coherent interface.
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Twinning in thin films—I. Elastic analysis

TL;DR: In this article, the authors examined the elastic energy contributions to the thermodynamics of twinning of a coherent film on a substrate and a thin layer sandwiched within the bulk using linear elasticity.
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Misfit effects in adhesion calculations

TL;DR: The work of adhesion of bimaterial interfaces is commonly computed using quantum mechanical methods in which the two materials are strained into coherency, contrary to what is commonly observed for essentially all systems other than very thin films as discussed by the authors.
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Grain boundary shear coupling is not a grain boundary property

TL;DR: In this article, a microscopic theory for grain boundary migration is proposed based on a statistical ensemble of line defects (disconnections) that are constrained to lie in the GB and compared with the MD results for several GBs provided quantitative validation of the theory as a function of stress, chemical potential jump and temperature.
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Elastic step interactions on vicinal surfaces of fcc metals

TL;DR: In this paper, the structural and energy properties of fcc metal steps on the (001) surface were determined from the surface energy of a series of (01 n ) and (11 m ) surfaces, respectively.