Wang Pengfei, Li Yun, Sun Ningru, Han Songbai, Wang Xiaomeng, Su Qinqin, Li Yanjun, He Jian, Yu Xiaohui, Du Shiyu, Francisco Joseph S, Zhu Jinlong, Zhao Yusheng
Shenzhen Key Laboratory of Natural Gas Hydrate, & Department of Physics & Institute of Major Scientific Facilities for New Materials & Academy for Advanced Interdisciplinary Studies, Southern University of Science and Technology, Shenzhen 518055, China.
School of Chemical Engineering, Ningbo Polytechnic, Ningbo, 315800, China.
Chem Rev. 2024 Sep 25;124(18):10363-10385. doi: 10.1021/acs.chemrev.2c00777. Epub 2024 Aug 27.
CO capture and sequestration based on hydrate technology are considered supplementary approaches for reducing carbon emissions and mitigating the greenhouse effect. Direct CO hydrate formation and CH gas substitution in natural gas hydrates are two of the main methods used for the sequestration of CO in hydrates. In this Review, we introduce the crystal structures of CO hydrates and CO-mixed gas hydrates and summarize the interactions between the CO molecules and clathrate hydrate/HO frames. In particular, we focus on the role of diffraction techniques in analyzing hydrate structures. The kinetic and thermodynamic properties then are introduced from micro/macro perspectives. Furthermore, the replacement of natural gas with CO/CO-mixed gas is discussed comprehensively in terms of intermolecular interactions, influencing factors, and displacement efficiency. Based on the analysis of related costs, risks, and policies, the economics of CO capture and sequestration based on hydrate technology are explained. Moreover, the difficulties and challenges at this stage and the directions for future research are described. Finally, we investigate the status of recent research related to CO capture and sequestration based on hydrate technology, revealing its importance in carbon emission reduction.
基于水合物技术的二氧化碳捕集与封存被认为是减少碳排放和缓解温室效应的补充方法。在水合物中直接形成二氧化碳水合物以及在天然气水合物中进行甲烷气体置换是用于二氧化碳封存的两种主要方法。在本综述中,我们介绍了二氧化碳水合物和二氧化碳混合气体水合物的晶体结构,并总结了二氧化碳分子与笼形水合物/水分子框架之间的相互作用。特别地,我们重点关注衍射技术在分析水合物结构中的作用。然后从微观/宏观角度介绍动力学和热力学性质。此外,从分子间相互作用、影响因素和置换效率等方面全面讨论了用二氧化碳/二氧化碳混合气体替代天然气的情况。基于对相关成本、风险和政策的分析,解释了基于水合物技术的二氧化碳捕集与封存的经济性。此外,描述了现阶段的困难和挑战以及未来的研究方向。最后,我们研究了基于水合物技术的二氧化碳捕集与封存的近期研究现状,揭示了其在减少碳排放方面的重要性。