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Title: Determination of gaseous fission product behavior near the cerium dioxide Σ3(111)/[1 1 ¯ 0] tilt grain boundary via first-principles study

Abstract

We present that grain boundaries (GBs) are the most abundant structural defects in nanostructured nuclear fuels and play an important role in determining fission product behavior, which further affects the performance of nuclear fuels. In this work, cerium dioxide (CeO2) is used as a surrogate material for mixed oxide fuels to understand gaseous fission product behavior, specifically Xe. First-principles calculations are employed to comprehensively study the behavior of Xe and trap sites for Xe near the Σ3(111)/[1 1 ¯ 0] grain boundary in CeO2, which will provide guidance on overall trends for Xe stability and diffusion at grain boundaries vs in the bulk. Significant segregation behavior of trap sites, regardless of charge states, is observed near the GB. This is mainly ascribed to the local atomic structure near the GB, which results in weaker bond strength and more negative segregation energies. For Xe, however, the segregation profile near the GB is different. Our calculations show that, as the size of trap sites increases, the segregation propensity of Xe is reduced. In addition, under hyper-stoichiometric conditions, the solubility of Xe trapped at the GB is significantly higher than that in the bulk, suggesting higher Xe concentration than that in the bulk. The results of this work demonstrate that the diffusion mechanism of Xe in CeO2 is comparable to that in UO2. The diffusion activation energies of Xe atoms in the Σ3GB are lower than that in the bulk CeO2. Lastly, these results suggest that the diffusivity of Xe atoms is higher along the GB than that in the bulk, which enhances the aggregation of Xe atoms near the GB.

Authors:
 [1];  [2];  [1]; ORCiD logo [3]; ORCiD logo [4]
  1. Univ. of Tennessee, Knoxville, TN (United States). Department of Materials Science and Engineering
  2. Shanghai University (China). School of Materials Science and Engineering
  3. Oak Ridge National Lab. (ORNL), Oak Ridge, TN (United States). Materials Science and Technology Division; Univ. of Tennessee, Knoxville, TN (United States). Department of Materials Science and Engineering
  4. Univ. of Tennessee, Knoxville, TN (United States). Department of Materials Science and Engineering; Oak Ridge National Lab. (ORNL), Oak Ridge, TN (United States). Materials Science and Technology Division
Publication Date:
Research Org.:
Oak Ridge National Lab. (ORNL), Oak Ridge, TN (United States)
Sponsoring Org.:
USDOE Office of Nuclear Energy (NE)
OSTI Identifier:
1422557
Alternate Identifier(s):
OSTI ID: 1549180
Grant/Contract Number:  
AC05-00OR22725; AC02-05CH11231; DEAC02-05CH11231
Resource Type:
Accepted Manuscript
Journal Name:
Journal of Nuclear Materials
Additional Journal Information:
Journal Volume: 499; Journal Issue: C; Journal ID: ISSN 0022-3115
Publisher:
Elsevier
Country of Publication:
United States
Language:
English
Subject:
36 MATERIALS SCIENCE; Grain boundary; Fission product; Segregation and diffusion; First principles calculations; Cerium dioxide

Citation Formats

Xi, Jianqi, Liu, Bin, Xu, Haixuan, Zhang, Yanwen, and Weber, William J. Determination of gaseous fission product behavior near the cerium dioxide Σ3(111)/[11¯0] tilt grain boundary via first-principles study. United States: N. p., 2017. Web. doi:10.1016/j.jnucmat.2017.11.046.
Xi, Jianqi, Liu, Bin, Xu, Haixuan, Zhang, Yanwen, & Weber, William J. Determination of gaseous fission product behavior near the cerium dioxide Σ3(111)/[11¯0] tilt grain boundary via first-principles study. United States. https://doi.org/10.1016/j.jnucmat.2017.11.046
Xi, Jianqi, Liu, Bin, Xu, Haixuan, Zhang, Yanwen, and Weber, William J. Sat . "Determination of gaseous fission product behavior near the cerium dioxide Σ3(111)/[11¯0] tilt grain boundary via first-principles study". United States. https://doi.org/10.1016/j.jnucmat.2017.11.046. https://www.osti.gov/servlets/purl/1422557.
@article{osti_1422557,
title = {Determination of gaseous fission product behavior near the cerium dioxide Σ3(111)/[11¯0] tilt grain boundary via first-principles study},
author = {Xi, Jianqi and Liu, Bin and Xu, Haixuan and Zhang, Yanwen and Weber, William J.},
abstractNote = {We present that grain boundaries (GBs) are the most abundant structural defects in nanostructured nuclear fuels and play an important role in determining fission product behavior, which further affects the performance of nuclear fuels. In this work, cerium dioxide (CeO2) is used as a surrogate material for mixed oxide fuels to understand gaseous fission product behavior, specifically Xe. First-principles calculations are employed to comprehensively study the behavior of Xe and trap sites for Xe near the Σ3(111)/[11¯0] grain boundary in CeO2, which will provide guidance on overall trends for Xe stability and diffusion at grain boundaries vs in the bulk. Significant segregation behavior of trap sites, regardless of charge states, is observed near the GB. This is mainly ascribed to the local atomic structure near the GB, which results in weaker bond strength and more negative segregation energies. For Xe, however, the segregation profile near the GB is different. Our calculations show that, as the size of trap sites increases, the segregation propensity of Xe is reduced. In addition, under hyper-stoichiometric conditions, the solubility of Xe trapped at the GB is significantly higher than that in the bulk, suggesting higher Xe concentration than that in the bulk. The results of this work demonstrate that the diffusion mechanism of Xe in CeO2 is comparable to that in UO2. The diffusion activation energies of Xe atoms in the Σ3GB are lower than that in the bulk CeO2. Lastly, these results suggest that the diffusivity of Xe atoms is higher along the GB than that in the bulk, which enhances the aggregation of Xe atoms near the GB.},
doi = {10.1016/j.jnucmat.2017.11.046},
journal = {Journal of Nuclear Materials},
number = C,
volume = 499,
place = {United States},
year = {Sat Dec 02 00:00:00 EST 2017},
month = {Sat Dec 02 00:00:00 EST 2017}
}

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