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首页> 外文期刊>RSC Advances >Microporous carbonaceous adsorbents for CO2 separation via selective adsorption
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Microporous carbonaceous adsorbents for CO2 separation via selective adsorption

机译:通过选择性吸附分离CO2的微孔碳质吸附剂

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Selective adsorption of CO2 has important implications for many energy and environment-related processes, which require the separation of CO2 from other gases (e.g. N-2 and CH4) with high uptakes and selectivity. The development of high-performance adsorbents is one of the most promising solutions to the success of these processes. The present review is focused on the state-of-the-art of carbon-based (carbonaceous) adsorbents, covering microporous inorganic carbons and microporous organic polymers, with emphasis on the correlation between their textural and compositional properties and their CO2 adsorption/separation performance. Special attention is given to the most recently developed materials that were not covered in previous reviews. We summarize various effective strategies (N-doping, surface functionalization, extra-framework ions, molecular design, and pore size engineering) for enhancing the CO2 adsorption capacity and selectivity of carbonaceous adsorbents. Our discussion focuses on CO2/N-2 separation and CO2/CH4 separation, while including an introduction to the methods and criteria used for evaluating the performance of the adsorbents. Critical issues and challenges regarding the development of high-performance adsorbents as well as some overlooked facts and misconceptions are also discussed, with the aim of providing important insights into the design of novel carbonaceous porous materials for various selective adsorption based applications.
机译:CO 2的选择性吸附对许多与能源和环境有关的过程具有重要意义,这些过程要求以高吸收率和选择性将CO 2与其他气体(例如N-2和CH 4)分离。高性能吸附剂的开发是这些方法成功的最有希望的解决方案之一。本综述着眼于碳基(碳质)吸附剂的最新技术,涵盖了微孔无机碳和微孔有机聚合物,并着重介绍了它们的结构和组成特性与它们的CO 2吸附/分离性能之间的相关性。 。特别关注以前的评论中未涵盖的最新开发材料。我们总结了各种有效的策略(N掺杂,表面官能化,骨架外离子,分子设计和孔径工程),以提高CO2吸附能力和碳质吸附剂的选择性。我们的讨论重点是CO2 / N-2分离和CO2 / CH4分离,同时还介绍了用于评估吸附剂性能的方法和标准。还讨论了有关高性能吸附剂开发的关键问题和挑战,以及一些被忽视的事实和误解,目的是为各种基于选择性吸附的新型碳质多孔材料的设计提供重要的见识。

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