Feng Chunying, Zhao Shufeng, Zong Yiwu, He Qing, Winarto William, Zhang Wenchao, Utada Andrew S, Zhao Kun
Frontiers Science Center for Synthetic Biology and Key Laboratory of Systems Bioengineering (Ministry of Education), School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, P.R. China.
School of Life and Environmental Sciences, University of Tsukuba, Ibaraki 305-8577, Japan.
Environ Sci Technol. 2022 Aug 2;56(15):11017-11026. doi: 10.1021/acs.est.1c08858. Epub 2022 Jul 20.
Amorphous calcium carbonate (ACC) plays an important role in microbially induced calcium carbonate precipitation (MICP), which has great potential in broad applications such as building restoration, CO sequestration, and bioremediation of heavy metals, etc. However, our understanding of ACC is still limited. By combining microscopy of cell-laden microdroplets with confocal Raman microspectroscopy, we investigated the ACC dynamics during MICP. The results show that MICP inside droplets can be divided into three stages: liquid, gel-like ACC, and precipitated CaCO stages. In the liquid stage, the droplets are transparent. As the MICP process continues into the gel-like stage, the ACC structure appears and the droplets become opaque. Subsequently, dissolution of the gel-like structure is accompanied by growth of precipitated CaCO crystals. The size, morphology, and lifetime of the gel-like structures depend on the Ca concentration. Using polystyrene colloids as tracers, we find that the colloids exhibit diffusive behavior in both the liquid and precipitated CaCO stages, while their motion becomes arrested in the gel-like ACC stage. These results provide direct evidence for the formation-dissolution process of the ACC-formed structure and its gel-like mechanical properties. Our work provides a detailed view of the time evolution of ACC and its mechanical properties at the microscale level, which has been lacking in previous studies.
无定形碳酸钙(ACC)在微生物诱导碳酸钙沉淀(MICP)过程中发挥着重要作用,MICP在建筑修复、二氧化碳封存以及重金属生物修复等广泛应用中具有巨大潜力。然而,我们对ACC的了解仍然有限。通过将载有细胞的微滴显微镜与共焦拉曼显微光谱相结合,我们研究了MICP过程中ACC的动态变化。结果表明,微滴内的MICP可分为三个阶段:液体、凝胶状ACC和沉淀的碳酸钙阶段。在液体阶段,微滴是透明的。随着MICP过程进入凝胶状阶段,ACC结构出现,微滴变得不透明。随后,凝胶状结构的溶解伴随着沉淀的碳酸钙晶体的生长。凝胶状结构的大小、形态和寿命取决于钙浓度。使用聚苯乙烯胶体作为示踪剂,我们发现胶体在液体和沉淀的碳酸钙阶段均表现出扩散行为,而在凝胶状ACC阶段其运动则被阻滞。这些结果为ACC形成的结构的形成 - 溶解过程及其凝胶状力学性能提供了直接证据。我们的工作提供了ACC在微观尺度上随时间演变及其力学性能的详细视图,这是先前研究中所缺乏的。