Segregation of Phosphorus and Silicon at the Grain Boundary in Bcc Iron via Machine-Learned Force Fields

Author:

Černý Miroslav12ORCID,Šesták Petr12ORCID

Affiliation:

1. Central European Institute of Technology, Brno University of Technology (CEITEC BUT), Purkyňova 123, 612 69 Brno, Czech Republic

2. Faculty of Mechanical Engineering, Brno University of Technology, Technická 2896/2, 616 69 Brno, Czech Republic

Abstract

The study of the effects of impurity on grain boundaries is a critical aspect of materials science, particularly when it comes to understanding and controlling the properties of materials for specific applications. One of the related key issues is the segregation preference of impurity atoms in the grain boundary region. In this paper, we employed the on-the-fly machine learning to generate force fields, which were subsequently used to calculate the segregation energies of phosphorus and silicon in bcc iron containing the ∑5(310)[001] grain boundary. The generated force fields were successfully benchmarked using ab initio data. Our further calculations considered impurity atoms at a number of possible interstitial and substitutional segregation sites. Our predictions of the preferred sites agree with the experimental observations. Planar concentration of impurity atoms affects the segregation energy and, moreover, can change the preferred segregation sites.

Funder

Czech Science Foundation

Publisher

MDPI AG

Subject

Inorganic Chemistry,Condensed Matter Physics,General Materials Science,General Chemical Engineering

Reference41 articles.

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3. McLean, D. (1957). Grain Boundaries in Metals, Clarendon Press.

4. Flewitt, P.E.J., and Wild, R.K. (2001). Grain Boundaries, Their Microstructure and Chemistry, John Wiley and Sons, Ltd.

5. Interfacial Segregation and Grain Boundary Embrittlement: An Overview and Critical Assessment of Experimental Data and Calculated Results;Paidar;Prog. Mater. Sci.,2017

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