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首页> 外文期刊>Applied Surface Science >Experimental and computational investigation of CO2 capture on amine grafted metal-organic framework NH2-MIL-101
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Experimental and computational investigation of CO2 capture on amine grafted metal-organic framework NH2-MIL-101

机译:胺接枝的金属有机骨架NH2-MIL-101捕获CO2的实验和计算研究

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摘要

A standard metal-organic framework, NH2-MIL-101 based on chromium has been synthesized. For the purpose of offering more binding sites for CO2, post-synthetic modification of tetraethylenepentamine (TEPA) was conducted by using a wet impregnation method. With the aim of better understanding the thermodynamics and mechanisms of CO2 adsorption, molecular dynamics (MD) simulations have been used for structures optimization and adsorption kinetics of NH2-MIL-101/TEPA adsorbents, and the CO2 adsorption capacity with different TEPA loadings was simulated by the Monte Carlo (MC) method. Results confirmed that TEPA was successfully grafted on the coordinative unsaturated metal centers. At 1 bar and 298 K, NH2-MIL-101 combined with 50 wt% TEPA exhibited a CO2 uptake of 3.1 mmol/g-sorb. Under low loading of TEPA, the coordinative unsaturated metal centers made a relatively big contribution to CO2 adsorption. With more TEPA incorporated, the CO2 binding affinity was enhanced due to the existence of abundant amine groups. On the basis of both experimental and simulation analysis, this synthesized amine-grafted sorbent with excellent CO2 capture performance is an ideal material for greenhouse gas control. (C) 2016 Elsevier B.V. All rights reserved.
机译:合成了基于铬的标准金属有机骨架NH2-MIL-101。为了提供更多的CO 2结合位点,使用湿法浸渍法对四亚乙基五胺(TEPA)进行了合成后修饰。为了更好地理解CO2的热力学和吸附机理,将分子动力学(MD)模拟用于NH2-MIL-101 / TEPA吸附剂的结构优化和吸附动力学,并模拟了不同TEPA负载量下的CO2吸附能力。通过蒙特卡洛(MC)方法。结果证实,TEPA成功地接枝在配位不饱和金属中心上。在1 bar和298 K的压力下,NH2-MIL-101与50 wt%的TEPA结合后,CO2吸收量为3.1 mmol / g-山梨醇。在TEPA的低负荷下,不饱和配位金属中心对CO2的吸附贡献较大。随着更多的TEPA掺入,由于存在大量胺基,CO2的结合亲和力得到了增强。在实验和模拟分析的基础上,这种合成的胺接枝吸附剂具有出色的CO2捕集性能,是控制温室气体的理想材料。 (C)2016 Elsevier B.V.保留所有权利。

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