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氮掺杂富勒烯作为一种潜在的氢燃料电池催化剂。

Nitrogen-doped fullerene as a potential catalyst for hydrogen fuel cells.

机构信息

Department of Physics, Southern University and A&M College, Baton Rouge, Louisiana 70813, United States.

出版信息

J Am Chem Soc. 2013 Mar 6;135(9):3315-8. doi: 10.1021/ja309042m. Epub 2013 Feb 20.

Abstract

We examine the possibility of nitrogen-doped C60 fullerene (N-C60) as a cathode catalyst for hydrogen fuel cells. We use first-principles spin-polarized density functional theory calculations to simulate the electrocatalytic reactions on N-C60. The first-principles results show that an O2 molecule can be adsorbed and partially reduced on the N-C complex sites (Pauling sites) of N-C60 without any activation barrier. Through a direct pathway, the partially reduced O2 can further react with H(+) and additional electrons and complete the water formation reaction (WFR) with no activation energy barrier. In the indirect pathway, reduced O2 reacts with H(+) and additional electrons to form H2O molecules through a transition state (TS) with a small activation barrier (0.22-0.37 eV). From an intermediate state to a TS, H(+) can obtain a kinetic energy of ∼0.95-3.68 eV, due to the Coulomb electric interaction, and easily overcome the activation energy barrier during the WFR. The full catalytic reaction cycles can be completed energetically, and N-C60 fullerene recovers to its original structure for the next catalytic reaction cycle. N-C60 fullerene is a potential cathode catalyst for hydrogen fuel cells.

摘要

我们研究了掺氮 C60 富勒烯(N-C60)作为氢燃料电池阴极催化剂的可能性。我们使用第一性原理自旋极化密度泛函理论计算来模拟 N-C60 上的电催化反应。第一性原理的结果表明,O2 分子可以在 N-C60 的 N-C 络合位点(Pauling 位点)上吸附并部分还原,而无需任何活化能垒。通过直接途径,部分还原的 O2 可以进一步与 H(+)和额外的电子反应,并在没有活化能垒的情况下完成水形成反应(WFR)。在间接途径中,还原的 O2 通过一个过渡态(TS)与 H(+)和额外的电子反应,形成 H2O 分子,该过渡态具有较小的活化能垒(0.22-0.37 eV)。从中间态到 TS,H(+)可以由于库仑电相互作用获得约 0.95-3.68 eV 的动能,并在 WFR 期间容易克服活化能垒。完整的催化反应循环可以在能量上完成,N-C60 富勒烯恢复到其原始结构,为下一个催化反应循环做好准备。N-C60 富勒烯是一种有潜力的氢燃料电池阴极催化剂。

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