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用于从各种气流中分离二氧化碳和硫化氢的“分子篮”吸附剂。

"Molecular basket" sorbents for separation of CO(2) and H(2)S from various gas streams.

作者信息

Ma Xiaoliang, Wang Xiaoxing, Song Chunshan

机构信息

Clean Fuels and Catalysis Program, EMS Energy Institute and Department of Energy and Mineral Engineering, The Pennsylvania State University 209 Academic Projects Building, University Park, Pennsylvania 16802, USA.

出版信息

J Am Chem Soc. 2009 Apr 29;131(16):5777-83. doi: 10.1021/ja8074105.

Abstract

A new generation of "molecular basket" sorbents (MBS) has been developed by the optimum combination of the nanoporous material and CO(2)/H(2)S-philic polymer sorbent to increase the accessible sorption sites for CO(2) capture from flue gas (Postdecarbonization), and for CO(2) and H(2)S separation from the reduced gases, such as synthesis gas, reformate (Predecarbonization), natural gas, coal/biomass gasification gas, and biogas. The sorption capacity of 140 mg of CO(2)/g of sorb was achieved at 15 kPa CO(2) partial pressure, which shows superior performance in comparison with other known sorbents. In addition, an exceptional dependence of MBS sorption performance on temperature for CO(2) and H(2)S was found and discussed at a molecular level via the computational chemistry approach. On the basis of the fundamental understanding of MBS sorption characteristics, an innovative sorption process was proposed and demonstrated at the laboratory scale for removing and recovering CO(2) and H(2)S, respectively, from a model gas. The present study provides a new approach for development of the novel CO(2)/H(2)S sorbents and may have a major impact on the advance of science and technology for CO(2)/H(2)S capture and separation from various gases.

摘要

通过将纳米多孔材料与亲CO₂/H₂S聚合物吸附剂进行优化组合,开发出了新一代“分子篮”吸附剂(MBS),以增加从烟道气中捕集CO₂(后脱碳)以及从合成气、重整产物(预脱碳)、天然气、煤/生物质气化气和沼气等还原气体中分离CO₂和H₂S的可及吸附位点。在15 kPa的CO₂分压下,吸附剂对CO₂的吸附容量达到140 mg/g,与其他已知吸附剂相比表现出卓越性能。此外,通过计算化学方法在分子水平上发现并讨论了MBS对CO₂和H₂S的吸附性能对温度的特殊依赖性。基于对MBS吸附特性的基本认识,提出了一种创新的吸附工艺,并在实验室规模上进行了演示,用于分别从模拟气体中去除和回收CO₂和H₂S。本研究为新型CO₂/H₂S吸附剂的开发提供了一种新方法,可能对从各种气体中捕集和分离CO₂/H₂S的科学技术进步产生重大影响。

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