雪硅钙石
硅酸铝钙
硅酸铝
水合物
水合硅酸钙
化学
铝硅酸钠
化学工程
硅酸钙
碱金属
相(物质)
硅酸钠
钙
硅酸盐
钠
矿物学
无机化学
结晶学
材料科学
有机化学
冶金
催化作用
水泥
工程类
作者
Rupert J. Myers,Susan Andrea Bernal,Rackel San Nicolas,John L. Provis
出处
期刊:Langmuir
[American Chemical Society]
日期:2013-03-27
卷期号:29 (17): 5294-5306
被引量:582
摘要
Structural models for the primary strength and durability-giving reaction product in modern cements, a calcium (alumino)silicate hydrate gel, have previously been based solely on non-cross-linked tobermorite structures. However, recent experimental studies of laboratory-synthesized and alkali-activated slag (AAS) binders have indicated that the calcium-sodium aluminosilicate hydrate [C-(N)-A-S-H] gel formed in these systems can be significantly cross-linked. Here, we propose a model that describes the C-(N)-A-S-H gel as a mixture of cross-linked and non-cross-linked tobermorite-based structures (the cross-linked substituted tobermorite model, CSTM), which can more appropriately describe the spectroscopic and density information available for this material. Analysis of the phase assemblage and Al coordination environments of AAS binders shows that it is not possible to fully account for the chemistry of AAS by use of the assumption that all of the tetrahedral Al is present in a tobermorite-type C-(N)-A-S-H gel, due to the structural constraints of the gel. Application of the CSTM can for the first time reconcile this information, indicating the presence of an additional activation product that contains highly connected four-coordinated silicate and aluminate species. The CSTM therefore provides a more advanced description of the chemistry and structure of calcium-sodium aluminosilicate gel structures than that previously established in the literature.
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