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Controlling the nucleophilic properties of cobalt salen complexes for carbon dioxide capture

机译:控制钴萨伦配合物的亲核特性以捕获二氧化碳

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The nucleophilic properties of cobalt salen complexes are examined using density functional theory to investigate its carbon fixing capacity. In particular, carbon dioxide attack on neutral and anionic cobalt salen molecules is considered. Carbon fixation occurs for the anionic cobalt salen complex and is due to the nucleophilic interaction between the cobalt center and carbon dioxide molecule in a Co d _( z ~(2) ) –CO _(2) π* interaction. A minimum energy path search by a nudged elastic band calculation reveals a lower forward activation energy for the anionic complex than the neutral complex, indicating that the formation of the anionic complex is thermodynamically and kinetically favored. In this case, the CO _(2) molecule is chemisorbed as partial charge transfer from the cobalt center to carbon dioxide is observed. Proposed reaction mechanisms explain how the Co–C bond energy of the CO _(2) –cobalt salen complex can be tuned by appropriate substitutions of electron donating or withdrawing groups on the phenyl ring.
机译:使用密度泛函理论研究钴塞伦配合物的亲核性质,以研究其碳固定能力。特别地,考虑到二氧化碳对中性和阴离子钴salen分子的侵蚀。碳固定发生在阴离子钴塞伦络合物上,并且是由于Co d_(z〜(2))-CO _(2)π*相互作用中钴中心与二氧化碳分子之间的亲核相互作用。通过微调的弹性带计算进行的最小能量路径搜索显示,阴离子络合物的正向活化能比中性络合物低,这表明阴离子络合物的形成在热力学和动力学上都是有利的。在这种情况下,CO_(2)分子被化学吸附,因为观察到部分电荷从钴中心转移到二氧化碳。拟议的反应机理解释了如何通过适当取代苯环上的给电子或吸电子基团来调节CO _(2)-钴Salen配合物的Co-C键能。

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