4.7 Article

Segregation competition and complexion coexistence within a polycrystalline grain boundary network

期刊

ACTA MATERIALIA
卷 218, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.actamat.2021.117213

关键词

Nanocrystalline alloys; grain boundaries; grain boundary segregation; amorphous complexions; atomistic simulations

资金

  1. U.S. Department of En-ergy, Office of Science, Basic Energy Sciences [DE-SC0021224]
  2. National Science Founda-tion Materials Research Science and Engineering Center program through the UC Irvine Center for Complex and Active Materials [DMR-2011967]
  3. U.S. Department of Energy (DOE) [DE-SC0021224] Funding Source: U.S. Department of Energy (DOE)

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Interfacial segregation and subsequent complexion transitions in polycrystalline Cu-Zr alloys were studied using hybrid Monte Carlo/molecular dynamics simulations. It was found that at moderate temperature, grain boundary segregation is the dominant behavior, with heterogeneous segregation within the boundary network. Changes in physical parameters correlated with dopant concentration. At higher temperature, a significant fraction of originally ordered boundaries transitioned to amorphous complexions, demonstrating the coexistence of different complexion types.
Interfacial segregation can stabilize grain structures and even lead to grain boundary complexion transitions. However, understanding of the complexity of such phenomena in polycrystalline materials is limited, as most studies focus on bicrystal geometries. In this work, we investigate interfacial segregation and subsequent complexion transitions in polycrystalline Cu-Zr alloys using hybrid Monte Carlo/molecular dynamics simulations. No significant change in the grain size or structure is observed upon Zr dopant addition to a pure Cu polycrystal at moderate temperature, where grain boundary segregation is the dominant behavior. Segregation within the boundary network is inhomogeneous, with some boundaries having local concentrations that are an order of magnitude larger than the global value and others having almost no segregation, and changes to physical parameters such as boundary free volume and energy are found to correlate with dopant concentration. Further, another alloy sample is investigated at a higher temperature to probe the occurrence of widespread transitions in interfacial structure, where a significant fraction of the originally ordered boundaries transition to amorphous complexions, demonstrating the coexistence of multiple complexion types, each with their own distribution of boundary chemical composition. Overall, this work highlights that interfacial segregation and complexion structure can be diverse in a polycrystalline network. The findings shown here complement existing computational and experimental studies of individual interfaces and help pave the way for unraveling the complexity of interfacial structure in realistic microstructures. (c) 2021 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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