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Janus 表面微孔中 CO 和水协同吸附引起的非膨胀粘土的膨胀现象。

Swelling Phenomena of the Nonswelling Clay Induced by CO and Water Cooperative Adsorption in Janus-Surface Micropores.

机构信息

Department of Systems Innovation, The University of Tokyo, Tokyo 113-8656, Japan.

Fukada Geological Institute, Tokyo 113-0021, Japan.

出版信息

Environ Sci Technol. 2020 May 5;54(9):5767-5773. doi: 10.1021/acs.est.0c00499. Epub 2020 Apr 21.

Abstract

With the development of microscopy and sensor techniques, it becomes evident that nonswelling clays show swelling behavior under CO-water mixture environments at high pressures and temperatures. The examples include Illite, muscovite, and kaolinite-rich rock samples. Here, we investigated the underlying mechanisms of kaolinite swelling induced by CO and water using molecular simulations and low-pressure gas adsorption experiments. The results suggest the cooperative adsorption behavior of CO and water on contact with kaolinite micropores, which have distinct wettabilities on the two adjoining interlayer surfaces. Even if clay-bound water exists, CO can enter the micropores to induce swelling. The measured micropore volume, simulated equilibrium stable interlayer distance with pure water, and that with CO-water mixture were used in the swelling estimation, which shows good agreement with our experiments. The CO and water molecule distributions inside the interlayer micropores verify the importance of the wettabilities of the kaolinite surfaces in this cooperative adsorption behavior. The result extends the traditional understanding of the swelling mechanism, i.e., cation hydration and subsequent osmotic processes. In addition to earlier observations of kaolinite swelling behavior with potassium acetate, our study indicates the significance of the subtle balance of the noncovalent interactions between CO, water, and the kaolinite Janus surfaces.

摘要

随着显微镜和传感器技术的发展,越来越明显的是,非膨胀性粘土在高压高温的 CO-水混合物环境下表现出膨胀行为。其中包括伊利石、白云母和富高岭石的岩石样品。在这里,我们使用分子模拟和低压气体吸附实验研究了高岭石在 CO 和水作用下膨胀的潜在机制。结果表明,CO 和水在与高岭石微孔接触时存在协同吸附行为,这两种物质在两个相邻的层间表面具有明显的润湿性。即使存在粘土结合水,CO 也可以进入微孔诱导膨胀。用测量的微孔体积、纯水中的模拟平衡稳定层间距以及 CO-水混合物中的模拟平衡稳定层间距来估算膨胀,这与我们的实验结果吻合较好。CO 和水分子在层间微孔内的分布验证了高岭石表面润湿性在这种协同吸附行为中的重要性。这一结果扩展了传统的膨胀机制的理解,即阳离子水合作用和随后的渗透压过程。除了早期观察到的乙酸钾作用下高岭石的膨胀行为外,我们的研究还表明了 CO、水和高岭石的 Janus 表面之间非共价相互作用的微妙平衡的重要性。

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