论文标题
掺杂石墨烯作为LI-O2和Na-O2电池中的阴极催化剂的理论分析 - 计算方案的影响
Theoretical analysis of doped graphene as cathode catalyst in Li-O2 and Na-O2 batteries -- the impact of the computational scheme
论文作者
论文摘要
了解M-O2细胞(M = LI或NA)的反应对于进一步发展这项有前途的技术至关重要。按照这种方式,计算建模可能很有帮助,但是需要一种适当的方法来建模此类复杂的系统。我们提出了一种在M-O2细胞中建模过程的新方案,其中参考能是从高级理论CCSD(T)中获得的,而反应中间体与催化剂表面的相互作用是从计算较便宜的DFT中提取的。使用最小的可行机制,对于基于石墨烯的表面作为模型催化剂的情况证明了该方法作为模型催化剂。 B掺杂的石墨烯被确定为所考虑的表面中最佳催化剂,而原始石墨烯的性能较差。此外,我们表明,DFT的分散校正校正对计算的放电和电荷电位具有重大影响,并表明当将基于石墨烯的材料建模为电催化剂时,应始终考虑远距离分散相互作用。最后,我们提供了针对M-O2细胞设计新的ORR催化剂的一般指南,以优化催化剂表面与反应中间体的相互作用。
Understanding the reactions in M-O2 cells (M = Li or Na) is of great importance for further advancement of this promising technology. Computational modelling can be helpful along this way, but an adequate approach is needed to model such complex systems. We propose a new scheme for modelling processes in M-O2 cells, where reference energies are obtained from high-level theory, CCSD(T), while the interactions of reaction intermediates with catalyst surfaces are extracted from computationally less expensive DFT. The approach is demonstrated for the case of graphene-based surfaces as model catalysts in Li-O2 and Na-O2 cells using the minimum viable mechanism. B-doped graphene was identified as the best catalyst among considered surfaces, while pristine graphene performs poorly. Moreover, we show that the inclusion of dispersion corrections for DFT has a significant impact on calculated discharge and charge potentials and suggests that long-range dispersion interactions should always be considered when graphene-based materials are modelled as electrocatalysts. Finally, we offer general guidelines for designing new ORR catalysts for M-O2 cells in terms of the optimization of the interactions of catalyst surface with reaction intermediates.