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钙铝硅酸盐水合物纳米晶体结构与力学的高通量原子模拟

High-throughput atomistic modeling of nanocrystalline structure and mechanics of calcium aluminate silicate hydrate.

作者信息

Li Yunjian, Chen Cheng, Li Zhenning, Li Zongjin

机构信息

Faculty of Innovation Engineering, Macau University of Science and Technology, Macao, China.

State Key Laboratory of Internet of Things for Smart City, University of Macau, Macao, China.

出版信息

Nat Commun. 2025 Jun 19;16(1):5352. doi: 10.1038/s41467-025-60631-6.

DOI:10.1038/s41467-025-60631-6
PMID:40537465
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12179312/
Abstract

Although aluminum-containing cements have gained attention as environmentally friendly construction materials, the nanocrystalline structure and mechanical behavior of their primary hydration product, calcium aluminate silicate hydrate (C-A-S-H), remain poorly understood due to its complex chemical composition and structural disorder. Here, we present a high-throughput atomistic modeling framework to systematically investigate the structural and mechanical properties of C-A-S-H across a broad range of Ca/Si (1.3-1.9) and Al/Si (0-0.15) ratios. The compositional, structural, and mechanical features of C-A-S-H are accurately captured by molecular dynamics simulations of 1600 distinct C-A-S-H structures constructed using our in-house automatic structure generation program, CASHgen. Our findings highlight the influence of Ca/Si and Al/Si ratios on key C-A-S-H characteristics, including the mean chain length (MCL), interlayer spacing, coordination number and elastic moduli. Specifically, C-A-S-H exhibits optimal mechanical performance at a Ca/Si ratio of approximately 1.5, while further increases in Ca/Si introduce disorder and reduce stiffness. In contrast, increasing the Al/Si ratio promotes chain polymerization, leading to longer MCLs and improved mechanical performance. These results provide atomic-scale insights into the structure-property relationships in C-A-S-H and offer design guidelines for high-performance, low-carbon cementitious materials.

摘要

尽管含铝水泥作为环保型建筑材料受到了关注,但其主要水化产物铝硅酸钙水合物(C-A-S-H)的纳米晶体结构和力学行为由于其复杂的化学成分和结构无序性,仍未得到充分理解。在此,我们提出了一个高通量原子模型框架,以系统地研究在广泛的Ca/Si(1.3 - 1.9)和Al/Si(0 - 0.15)比例范围内C-A-S-H的结构和力学性能。通过使用我们内部的自动结构生成程序CASHgen构建的1600种不同C-A-S-H结构的分子动力学模拟,准确地捕捉了C-A-S-H的组成、结构和力学特征。我们的研究结果突出了Ca/Si和Al/Si比例对C-A-S-H关键特性的影响,包括平均链长(MCL)、层间距、配位数和弹性模量。具体而言,C-A-S-H在Ca/Si比例约为1.5时表现出最佳力学性能,而Ca/Si的进一步增加会引入无序并降低刚度。相反,增加Al/Si比例会促进链聚合,导致更长的MCL并改善力学性能。这些结果为C-A-S-H中的结构-性能关系提供了原子尺度的见解,并为高性能、低碳胶凝材料提供了设计指导。

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本文引用的文献

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Molecular elucidation of cement hydration inhibition by silane coupling agents.硅烷偶联剂对水泥水化抑制作用的分子解析
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