溶解
动力学
材料科学
硅酸盐水泥
水泥
降水
化学工程
扫描电子显微镜
桥接(联网)
矿物学
冶金
镁
反应性(心理学)
打赌理论
比表面积
环境科学
碱金属
方解石
作者
Xiaowen Zhang,Juan Pablo Gevaudan
出处
期刊:Sustainability
[Multidisciplinary Digital Publishing Institute]
日期:2026-04-07
卷期号:18 (7): 3600-3600
摘要
Performance variability in MgO-based cements stems partly from poorly characterized dissolution kinetics of commercial lightly burned magnesia (LBM). Existing studies focus on high-purity materials under acidic conditions, but LBM also dissolves in alkaline conditions, where Mg(OH)2 precipitation prevents reliable sampling at high pH. We validated pH monitoring against ICP-AES for tracking initial LBM dissolution kinetics across pH 2.0–11.0 and temperatures 25–85 °C. Commercial LBM (32 m2/g, 7.5 wt% CaO) exhibited rates one to two orders of magnitude higher than synthetic magnesia (10−8 to 10−12 mol/cm2·s). X-ray diffraction, electron microscopy with energy-dispersive spectroscopy, and BET analysis revealed enhanced reactivity from poor crystallinity, multiphase composition, and high surface area with textural porosity. Temperature effects peaked at 75 °C before declining due to Mg(OH)2 passivation. The validated method provides practical guidance for MBC quality control and performance optimization. By providing a rapid, instrument-simple alternative to ICP-AES for reactivity assessment, it lowers the analytical barrier to systematic LBM quality control, supporting the transition of magnesia-based cements from laboratory materials to scalable low-carbon alternatives to Portland cement.
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