Kattel Shyam, Atanassov Plamen, Kiefer Boris
Department of Physics, New Mexico State University, Las Cruces, NM 88003, USA.
Phys Chem Chem Phys. 2014 Jul 21;16(27):13800-6. doi: 10.1039/c4cp01634c. Epub 2014 May 29.
First-principles density functional theory (DFT) calculations were performed to explain the stability of catalytically active sites in Fe-Nx-C electrocatalysts, their ORR activity and ORR mechanism. The results show that the formation of graphitic in-plane Fe-N4 sites in a carbon matrix is energetically favorable over the formation of Fe-N2 sites. Chemisorption of ORR species O2, O, OH, OOH, and H2O and O-O bond breaking in peroxide occur on both Fe-N2 and Fe-N4 sites. In addition to the favorable interaction of ORR species, the computed free energy diagrams show that elementary ORR reaction steps on Fe-Nx sites are downhill. Thus, a complete ORR is predicted to occur via a single site 4e(-) mechanism on graphitic Fe-Nx (x = 2, 4) sites. Because of their higher stability and working potential for ORR, Fe-N4 sites are predicted to be prime candidate sites for ORR in pyrolyzed Fe-Nx-C electrocatalysts.
进行了第一性原理密度泛函理论(DFT)计算,以解释Fe-Nx-C电催化剂中催化活性位点的稳定性、它们的氧还原反应(ORR)活性和ORR机理。结果表明,在碳基体中形成平面石墨化Fe-N4位点在能量上比形成Fe-N2位点更有利。ORR物种O2、O、OH、OOH和H2O的化学吸附以及过氧化物中O-O键的断裂在Fe-N2和Fe-N4位点上均会发生。除了ORR物种的有利相互作用外,计算得到的自由能图表明,Fe-Nx位点上的基本ORR反应步骤是放热的。因此,预计通过石墨化Fe-Nx(x = 2, 4)位点上的单位点4e(-)机制会发生完整的ORR。由于其更高的稳定性和ORR工作电位,预计Fe-N4位点是热解Fe-Nx-C电催化剂中ORR的主要候选位点。