Li Qiao-Zhi, Zheng Jia-Jia, Dang Jing-Shuang, Zhao Xiang
Institute for Chemical Physics and Department of Chemistry, State Key Laboratory of Electrical Insulation and Power Equipment, Xi'an Jiaotong University, Xi'an 710049 (P.R. China).
Chemphyschem. 2015 Feb 2;16(2):390-5. doi: 10.1002/cphc.201402620. Epub 2014 Nov 14.
The activation of oxygen molecules on boron-doped C60 fullerene (C59 B) and the subsequent water formation reaction are systematically investigated by using hybrid density functional calculations. Results indicate that C59 B shows a favorable ability to activate oxygen molecules both kinetically and thermodynamically. The oxygen molecule is first adsorbed on the boron atom, which is identified to be the most reactive site in C59 B for O2 adsorption because of its high positive charge and spin density. The adsorption structure C59 BO2 can further isomerize to form two products with small reaction barriers. Water formation reactions upon these two structures are energetically favorable and suggest a four-electron mechanism for the oxygen reduction reaction catalyzed by C59 B. This work provides a reliable theoretical insight into the catalytic properties of boron-doped fullerene, which is believed to be helpful to explore fullerene catalysts.
通过使用杂化密度泛函计算,系统地研究了硼掺杂的C60富勒烯(C59B)上氧分子的活化以及随后的水形成反应。结果表明,C59B在动力学和热力学上均表现出良好的活化氧分子的能力。氧分子首先吸附在硼原子上,由于其高正电荷和自旋密度,硼原子被确定为C59B中对O2吸附最具反应活性的位点。吸附结构C59BO2可以进一步异构化形成两种具有小反应势垒的产物。这两种结构上的水形成反应在能量上是有利的,并表明了C59B催化氧还原反应的四电子机制。这项工作为硼掺杂富勒烯的催化性能提供了可靠的理论见解,这被认为有助于探索富勒烯催化剂。