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Confinement induces stable calcium carbonate formation in silica nanopores

机译:监禁引发稳定的碳酸钙形成硅纳米孔

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摘要

Scalable efforts to remove anthropogenic CO(2)via the formation of durable carbonates require us to harness siliceous nanoporous geologic materials for carbon storage. While calcium carbonate formation has been extensively reported in bulk fluids, there is a limited understanding of the influence of nanoconfined fluids on the formation of specific stable and metastable polymorphs of calcium carbonates in siliceous materials that are abundant in subsurface environments. To address this challenge, silica nanochannels with diameters of 3.7 nm are architected and the formation of specific calcium carbonate phases is investigated using X-ray diffraction (XRD), and molecular dynamics (MD) simulations. The formation of stable calcium carbonate (or calcite) is noted in silica nanochannels. The presence of fewer water molecules in the first hydration shell of calcium ions in confinement compared to in bulk fluids contributes to stable calcium carbonate formation. These studies show that nanoporous siliceous environments favor the formation of stable calcium carbonate formation.
机译:可伸缩的努力消除人为有限公司(2)通过持久的碳酸盐的形成需要我们利用硅质纳米多孔地质材料碳储存。散装形成被广泛报道液体,有一个有限的理解nanoconfined流体的形成的影响特定的稳定和亚稳的多晶型物在硅质材料钙碳酸盐丰富的地下环境中。应对这一挑战,二氧化硅纳米通道直径3.7 nm架构,碳酸钙形成的特定阶段使用x射线衍射(XRD)研究,分子动力学(MD)模拟。形成碳酸钙(或稳定方解石)是在硅纳米通道。更少的水分子的存在钙离子的水化壳监禁比散装液体有助于稳定碳酸钙的形成。纳米多孔硅质环境支持形成稳定的碳酸钙的形成。

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