School of Chemical Engineering, The University of Adelaide , Adelaide, South Australia 5005, Australia.
J Am Chem Soc. 2014 Mar 19;136(11):4394-403. doi: 10.1021/ja500432h. Epub 2014 Mar 11.
The mutually corroborated electrochemical measurements and density functional theory (DFT) calculations were used to uncover the origin of electrocatalytic activity of graphene-based electrocatalysts for oxygen reduction reaction (ORR). A series of graphenes doped with nonmetal elements was designed and synthesized, and their ORR performance was evaluated in terms of four electrochemical descriptors: exchange current density, on-set potential, reaction pathway selectivity and kinetic current density. It is shown that these descriptors are in good agreement with DFT calculations, allowing derivation of a volcano plot between the ORR activity and the adsorption free energy of intermediates on metal-free materials, similarly as in the case of metallic catalysts. The molecular orbital concept was used to justify this volcano plot, and to theoretically predict the ORR performance of an ideal graphene-based catalyst, the ORR activity of which is comparable to the state-of-the-art Pt catalyst. Moreover, this study may stimulate the development of metal-free electrocatalysts for other key energy conversion processes including hydrogen evolution and oxygen evolution reactions and largely expand the spectrum of catalysts for energy-related electrocatalysis reactions.
相互印证的电化学测量和密度泛函理论(DFT)计算被用来揭示基于石墨烯的电催化剂对氧还原反应(ORR)的电催化活性的起源。设计和合成了一系列掺杂非金属元素的石墨烯,并根据四个电化学描述符来评估其 ORR 性能:交换电流密度、起始电位、反应途径选择性和动力学电流密度。结果表明,这些描述符与 DFT 计算非常吻合,允许在无金属材料的中间体吸附自由能与 ORR 活性之间得出火山图,这与金属催化剂的情况类似。分子轨道概念被用来证明这个火山图,并从理论上预测理想的基于石墨烯的催化剂的 ORR 性能,其 ORR 活性可与最先进的 Pt 催化剂相媲美。此外,这项研究可能会激发用于其他关键能量转换过程(包括析氢和析氧反应)的无金属电催化剂的发展,并大大扩展与能源相关的电催化反应的催化剂谱。