Kunhi Mohamed Aslam, Moutzouri Pinelopi, Berruyer Pierrick, Walder Brennan J, Siramanont Jirawan, Harris Maya, Negroni Mattia, Galmarini Sandra C, Parker Stephen C, Scrivener Karen L, Emsley Lyndon, Bowen Paul
Laboratory of Construction Materials, Institut des Matériaux, École Polytechnique Fédérale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland.
Institute for Building Materials, Department of Civil, Environmental and Geomatic Engineering, ETH Zürich, CH-8093 Zürich, Switzerland.
J Am Chem Soc. 2020 Jun 24;142(25):11060-11071. doi: 10.1021/jacs.0c02988. Epub 2020 Jun 11.
Despite use of blended cements containing significant amounts of aluminum for over 30 years, the structural nature of aluminum in the main hydration product, calcium aluminate silicate hydrate (C-A-S-H), remains elusive. Using first-principles calculations, we predict that aluminum is incorporated into the bridging sites of the linear silicate chains and that at high Ca:Si and HO ratios, the stable coordination number of aluminum is six. Specifically, we predict that silicate-bridging [AlO(OH)] complexes are favored, stabilized by hydroxyl ligands and charge balancing calcium ions in the interlayer space. This structure is then confirmed experimentally by one- and two-dimensional dynamic nuclear polarization enhanced Al and Si solid-state NMR experiments. We notably assign a narrow Al NMR signal at 5 ppm to the silicate-bridging [AlO(OH)] sites and show that this signal correlates to Si NMR signals from silicates in C-A-S-H, conflicting with its conventional assignment to a "third aluminate hydrate" (TAH) phase. We therefore conclude that TAH does not exist. This resolves a long-standing dilemma about the location and nature of the six-fold-coordinated aluminum observed by Al NMR in C-A-S-H samples.
尽管含有大量铝的混合水泥已使用了30多年,但主要水化产物铝酸钙硅水合物(C-A-S-H)中铝的结构性质仍然难以捉摸。通过第一性原理计算,我们预测铝会掺入线性硅酸盐链的桥连位点,并且在高Ca:Si和HO比时,铝的稳定配位数为6。具体而言,我们预测硅酸盐桥连的[AlO(OH)]络合物是有利的,通过层间空间中的羟基配体和电荷平衡钙离子得以稳定。然后通过一维和二维动态核极化增强的Al和Si固态NMR实验对该结构进行了实验证实。我们特别将5 ppm处的窄Al NMR信号归属于硅酸盐桥连的[AlO(OH)]位点,并表明该信号与C-A-S-H中硅酸盐的Si NMR信号相关,这与其传统上归属于“第三铝酸盐水合物”(TAH)相相矛盾。因此,我们得出结论,TAH不存在。这解决了一个长期存在的难题,即关于在C-A-S-H样品中通过Al NMR观察到的六配位铝的位置和性质。