Understanding hydration reactions, mechanical properties, thermal expansion, and organic interfacial interactions of calcium sulfate hydrates from the atomic scale

IF 10.9 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY Cement and Concrete Research Pub Date : 2024-12-08 DOI:10.1016/j.cemconres.2024.107740
Ratan K. Mishra , Samir Darouich , Pieter J. in 't Veld , Robert J. Flatt , Hendrik Heinz
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Abstract

Calcium sulfates such as anhydrite, hemihydrate, and gypsum are used extensively in building materials, wall board, and biomaterials. The correlation between nanoscale structure and macroscopic properties, however, remains incompletely understood. We employed molecular dynamics simulations with the Interface Force Field (IFF) to examine sensitive hydration reactions, anisotropic thermal and mechanical properties, as well as (hkl) specific adsorption of organic modifiers. Computed thermal transitions between calcium sulfate phases, directional coefficients of thermal expansion, and directional mechanical properties agree exceptionally well with partially known experimental measurements, provide missing data and mechanistic understanding at the atomic scale. Polymeric naphthalene sulfonate-formaldehyde condensates exhibit strong, selective adsorption to the hemihydrate (001) surface. The polymer conformations and facet-specific binding affinities explain the delayed hydration of calcium sulfate hemihydrate to gypsum. The simulation methods can be applied to predict crystal growth and properties of sulfate-containing multiphase materials from atoms to the micrometer scale.
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从原子尺度上理解水化反应、机械性能、热膨胀和有机界面相互作用的硫酸钙水合物
硫酸钙如硬石膏、半水合钙和石膏广泛用于建筑材料、墙板和生物材料。然而,纳米级结构与宏观性质之间的关系仍不完全清楚。利用界面力场(IFF)进行分子动力学模拟,研究了有机改性剂的敏感水化反应、各向异性热学和力学性能以及(hkl)特异性吸附。计算出的硫酸钙相之间的热跃迁、热膨胀的定向系数和定向力学性能与部分已知的实验测量结果非常吻合,提供了缺失的数据和原子尺度上的力学理解。聚合萘磺酸甲醛缩合物对半水合物(001)表面表现出很强的选择性吸附。聚合物构象和面特异性结合亲和解释了半水合硫酸钙与石膏延迟水化的原因。模拟方法可用于从原子到微米尺度预测含硫酸盐多相材料的晶体生长和性能。
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来源期刊
Cement and Concrete Research
Cement and Concrete Research 工程技术-材料科学:综合
CiteScore
20.90
自引率
12.30%
发文量
318
审稿时长
53 days
期刊介绍: Cement and Concrete Research is dedicated to publishing top-notch research on the materials science and engineering of cement, cement composites, mortars, concrete, and related materials incorporating cement or other mineral binders. The journal prioritizes reporting significant findings in research on the properties and performance of cementitious materials. It also covers novel experimental techniques, the latest analytical and modeling methods, examination and diagnosis of actual cement and concrete structures, and the exploration of potential improvements in materials.
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