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Molecular dynamics study on structural characteristics and mechanical properties of sodium aluminosilicate hydrate with immobilized radioactive Cs and Sr ions.

Authors :
Wang, Tongfang
Tu, Yongming
Guo, Tong
Fang, Mengxiang
Shi, Pan
Yuan, Lei
Wang, Chao
Sas, Gabriel
Elfgren, Lennart
Source :
Applied Clay Science. Oct2023, Vol. 243, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

As a low-carbon, environment-friendly and economical resource for nuclear power generation, radionuclide emission and storage has received worldwide attention. Geopolymer concrete is a green and sustainable building material that can be used to immobilize radionuclides. In the present study, molecular dynamics simulations were conducted to investigate the structural and mechanical properties of sodium aluminosilicate hydrate (NASH) gel, the main component of geopolymer concrete, with/without immobilized radioactive Cs and Sr ions. The three-dimensional structure of NASH gel enabled good immobilization of both radioactive Cs and Sr ions owing to the large radius of Cs ions and high charge density of Sr ions. Addition of Cs ions reduced the strength of the gel and increased the fracture strain, whereas addition of Sr ions increased the strength and significantly increased the ductility. Addition of Sr ions increased the number of penta-coordinated Al in the structure. Consequently, breakage of these bonds required more energy to be absorbed from outside. The nanoscale molecular dynamics simulations provided a theoretical support at atomic level for understanding the structural and mechanical characteristics of geopolymers pertinent to the immobilization of nuclear waste. [Display omitted] • The molecular dynamics approach provided a nanoscopic basis for radioactive waste disposal. • NASH gel has a good immobilization effect on Cs and Sr ions at nanoscopic scale. • Addition of radioactive ions alters the structural and mechanical properties of NASH. • Addition of Sr ions improves the ductility of the structure. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01691317
Volume :
243
Database :
Academic Search Index
Journal :
Applied Clay Science
Publication Type :
Academic Journal
Accession number :
169873406
Full Text :
https://doi.org/10.1016/j.clay.2023.107042