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High-throughput screening of metal-porphyrin-like graphenes for selective capture of carbon dioxide

机译:高通量筛选金属卟啉类石墨烯以选择性捕获二氧化碳

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摘要

Nanostructured materials, such as zeolites and metal-organic frameworks, have been considered to capture CO2. However, their application has been limited largely because they exhibit poor selectivity for flue gases and low capture capacity under low pressures. We perform a high-throughput screening for selective CO2 capture from flue gases by using first principles thermodynamics. We find that elements with empty d orbitals selectively attract CO2 from gaseous mixtures under low CO2 pressures (~10>−3 bar) at 300 K and release it at ~450 K. CO2 binding to elements involves hybridization of the metal d orbitals with the CO2 π orbitals and CO2-transition metal complexes were observed in experiments. This result allows us to perform high-throughput screening to discover novel promising CO2 capture materials with empty d orbitals (e.g., Sc– or V–porphyrin-like graphene) and predict their capture performance under various conditions. Moreover, these findings provide physical insights into selective CO2 capture and open a new path to explore CO2 capture materials.
机译:纳米结构材料,例如沸石和金属有机骨架,已被认为可以捕获二氧化碳。但是,它们的应用受到很大限制,因为它们对烟气的选择性差,并且在低压下的捕集能力低。我们使用热力学第一原理对烟气中的选择性CO2捕集进行高通量筛选。我们发现,d轨道为空的元素在300 K的低CO2压力(〜10 >- 3 bar)下有选择地从气体混合物中吸引CO2,并在〜450 K释放出来。 CO 2与元素的结合涉及金属d轨道与CO 2π轨道的杂交,并且在实验中观察到了CO 2过渡金属配合物。该结果使我们能够进行高通量筛选,以发现具有空d轨道的新型有前途的CO2捕集材料(例如,Sc–或V–卟啉样石墨烯),并预测它们在各种条件下的捕集性能。此外,这些发现为选择性捕集二氧化碳提供了物理见解,并为探索二氧化碳捕集材料开辟了一条新途径。

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