Guo Feng, Chen Jizhou, Tang Qingyin, Sun Mengqi, Feng Haibao, Gao Hailiang, Li Mengmeng, Lu Shuang
Beijing Jingtou Transportation Development Co., Ltd. Beijing 102629 China.
Qingdao Municipal Group Co., Ltd. Qingdao 266003 China.
RSC Adv. 2024 Apr 29;14(20):13972-13983. doi: 10.1039/d4ra00822g. eCollection 2024 Apr 25.
With the increasing global concern over carbon emissions, geopolymers have garnered significant attention due to their energy-saving, waste utilization, and eco-friendly advantages. Metakaolin and slag, as aluminum-containing mineral materials in geopolymer production, have been widely studied and applied. Previous research has mainly focused on performance design and theoretical development, while the underlying mechanisms at the microscopic level remain unclear. In this study, we employed molecular dynamics simulations to investigate the microscale reaction behavior of geopolymers, exploring the induction process and structural evolution during the initial stages, and revealing the similarities and differences under alkali activation for different materials. Our findings indicate that the alkali activation process can be divided into two stages: mineral crystal deconstruction and oligomer polymerization. The role of NaOH differs between low-calcium and high-calcium systems, where in the low-calcium system, Na substitutes Ca due to Ca deficiency, participating in the formation of the network framework. Moreover, the high-calcium system exhibits a faster formation of the gel phase during alkali activation compared to the low-calcium system. This study provides valuable insights into the research and application of geopolymers.
随着全球对碳排放的关注度不断提高,地质聚合物因其节能、废物利用和环保优势而备受关注。偏高岭土和矿渣作为地质聚合物生产中的含铝矿物材料,已得到广泛研究和应用。以往的研究主要集中在性能设计和理论发展方面,而微观层面的潜在机制仍不明确。在本研究中,我们采用分子动力学模拟来研究地质聚合物的微观反应行为,探索初始阶段的诱导过程和结构演变,并揭示不同材料在碱激活下的异同。我们的研究结果表明,碱激活过程可分为两个阶段:矿物晶体解构和低聚物聚合。NaOH在低钙和高钙体系中的作用不同,在低钙体系中,由于钙缺乏,Na取代Ca,参与网络骨架的形成。此外,与低钙体系相比,高钙体系在碱激活过程中凝胶相的形成速度更快。本研究为地质聚合物的研究和应用提供了有价值的见解。