Source data of cement hydration inhibition by silane coupling agents elucidated from atomistic simulations and hydration experiments

Chen, Binmeng;Wang, Meng;Manzano, Hegoi;Zhao, Yuyang;Li, Yunjian

Description

Silane coupling agents are widely recognized to retard early hydration when incorporated into fresh cement paste, yet the atomic-level mechanisms underlying their effects on clinker dissolution, such as the adsorption of silane monomer onto reactive surface sites and the modification of ion detachment pathways, remain largely unexplored. Here we show dissolution pathways of tricalcium silicate (Ca3SiO5) under 3-aminopropyl triethoxysilane impact using ab initio metadynamics, with subsequent experimental validation of the retardation effects in silane-treated pastes. The shielding effect of silane induces a shift in the free energy changes of stepwise calcium dissolution from negative to positive and alters the most stable coordination state of calcium during dissolution, resulting in the transition of calcium dissolution from spontaneous to non-spontaneous. Specifically, hydrolyzed silane monomer dissociatively adsorbs onto Ca3SiO5 surface by forming ionic Ca-O bonds, thereby occupying reactive sites and introducing steric hindrance. This, in turn, impedes coordination between calcium ions and water molecules. Experimental results further corroborate these interactions, as evidenced by reduced calcium concentrations in silane-treated pastes, which in turn slowed hydration process. These findings offer nanoscopic insights into the role of SCAs in cement hydration and provide a foundation for future research into the complex interactions within organic/cement systems.

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Metrics

Dataset Index

0.6

FAIR Score

85%

Citations

0

Mentions

0

Metrics Over Time

Publication Details

DOI

Publisher

figshare

License

Creative Commons Attribution 4.0 International

Assigned Domain

Subfield

Materials Chemistry

Field

Materials Science

Domain

Physical Sciences

Confidence Score

45%

Source

Scholar Data Model

Keywords

Computational chemistry

Normalization Factors

FT

50.00

CTw

1.00

MTw

1.00