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首页> 外文期刊>ACS applied materials & interfaces >Adsorption Properties and Microscopic Mechanism of CO2 Capture in 1,1-Dimethyl-1,2-ethylenediamine-Grafted Metal-Organic Frameworks
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Adsorption Properties and Microscopic Mechanism of CO2 Capture in 1,1-Dimethyl-1,2-ethylenediamine-Grafted Metal-Organic Frameworks

机译:1,1-二甲基-1,2-乙二胺 - 接枝金属 - 有机框架中CO2捕获的吸附性能和微观机理

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The adsorption properties and microscopic mechanism of CO2 adsorption in 1,1-dimethyl-1,2-ethylenediamine (dmen) functionalized M-2(dobpdc) (dobpdc(4-)=4,4'-dioxidobiphenyl-3,3'-dicarboxylate; M = Mg, Sc-n) have been completely unveiled for the first time via comprehensive investigations based on first-principles density functional theory (DFT) calculations. The results show that for the primary-primary amine, dmen prefers to interact with the open metal site of M-2(dobpdc) via the end with smaller steric hindrance. The binding energies of dmen with MOFs are in the range of 104-174 kJ/mol. In presence of CO2, it fully inserts into the metal-N bond, forming ammonium carbamate. The CO2 binding energies vary from 53 to 89 kJ/mol, showing strong metal dependence. Among the 11 metals, dmen-Sc-2(dobpdc) and dmen-M-2(dobpdc) have the highest CO2 binding energies of 89 and 84 kJ/mol, respectively, and may have large CO2 adsorption capacity for practical applications. More importantly, the microscopic CO2 capture process of dmen-M-2(dobpdc) is revealed at the atomic level. The whole reaction process includes two steps, that is, formation of zwitterion intermediate (step 1) and rearrangement of the zwitterion intermediate (step 2). The first step in which nucleophilic addition between CO2 and the metal-bound amine and proton transfer from the metal-bound amine to free amine simultaneously occur is a rate-determining step, with higher energy barriers (0.99-1.35 eV). The second step with much lower barriers (maximum of 0.16 eV) is extremely easy, which can promote the whole CO2 uptake process in dmen-M-2(dobpdc). This study provides a fundamental understanding of the underlying mechanism of the rather complicated CO2 adsorption process and sheds important insights on design, synthesis, and optimization of highly efficient CO2 capture materials.
机译:CO2吸附在1,1-二甲基-1,2-乙二胺(Dmen)官能化M-2(DOBPDC)中的吸附性能和微观机理(DOBPDC(4 - )= 4,4'-二氧吡啶基苯基-3,3'-二羧酸二羧酸盐; M = Mg,SC-N)通过基于第一原理函数理论(DFT)计算的综合调查,首次完全推出。结果表明,对于初级伯胺,DMEN喜欢通过较小的空间障碍的末端与M-2(DOBPDC)的开放金属位点相互作用。 Dmen用MOF的结合能量在104-174kJ / mol的范围内。在CO 2存在下,它充分插入金属-N键,形成氨基甲酸铵。 CO2结合能量在53至89 kJ / mol之间变化,显示出强金属依赖性。在11金属中,DMEN-SC-2(DOBPDC)和DMEN-M-2(DOBPDC)分别具有89和84kJ / mol的最高CO 2结合能,并且可以具有大的CO 2吸附能力,用于实际应用。更重要的是,Dmen-M-2(DOBPDC)的微观CO2捕获过程在原子水平上揭示。整个反应过程包括两个步骤,即,形成两性离子中间体(步骤1)并重新排列两性离子中间体(步骤2)。同时发生二氧化碳与金属结合胺与金属结合胺的金属结合胺的亲核和质子转移的第一步是同时进行速率确定步骤,具有更高的能量屏障(0.99-1.35eV)。具有较低障碍物(最大0.16eV)的第二步非常容易,这可以促进DMEN-M-2(DOBPDC)中的整个CO2摄取过程。本研究提供了对相当复杂的二氧化碳吸附过程的潜在机制的基本理解,并对高效二氧化碳捕获材料的设计,合成和优化进行了重要见解。

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