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Defect-free and crystallinity-preserving ductile deformation in semiconducting AgS. | LitMetric

Defect-free and crystallinity-preserving ductile deformation in semiconducting AgS.

Sci Rep

Collaboratory for Advanced Computing and Simulations, Department of Physics and Astronomy, Department of Computer Science, Department of Chemical Engineering and Materials Science, and Department of Biological Science, University of Southern California, Los Angeles, CA, 90089-0242, USA.

Published: November 2022

Typical ductile materials are metals, which deform by the motion of defects like dislocations in association with non-directional metallic bonds. Unfortunately, this textbook mechanism does not operate in most inorganic semiconductors at ambient temperature, thus severely limiting the development of much-needed flexible electronic devices. We found a shear-deformation mechanism in a recently discovered ductile semiconductor, monoclinic-silver sulfide (AgS), which is defect-free, omni-directional, and preserving perfect crystallinity. Our first-principles molecular dynamics simulations elucidate the ductile deformation mechanism in monoclinic-AgS under six types of shear systems. Planer mass movement of sulfur atoms plays an important role for the remarkable structural recovery of sulfur-sublattice. This in turn arises from a distinctively high symmetry of the anion-sublattice in AgS, which is not seen in other brittle silver chalcogenides. Such mechanistic and lattice-symmetric understanding provides a guideline for designing even higher-performance ductile inorganic semiconductors.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9663522PMC
http://dx.doi.org/10.1038/s41598-022-24004-zDOI Listing

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