Liu Guangsheng, Xie Feng, Cai Xu, Ye Jingyun
Department of Chemistry and Biochemistry, Duquesne University, Pittsburgh, Pennsylvania 15282, United States.
Department of Chemistry and Chemical Biology, Rutgers University, Piscataway, New Jersey 08854, United States.
ACS Catal. 2024 May 20;14(11):8652-8665. doi: 10.1021/acscatal.4c01091. eCollection 2024 Jun 7.
Bimetallic metal-organic frameworks (BMOFs) have shown a superior oxygen evolution reaction (OER) performance, attributed to the synergistic effects of dual metal sites. However, the significant role of these dual-metal synergies in the OER is not yet fully understood. In this study, we employed density functional theory to systematically investigate the OER performance of NiAl- and NiFe-based BMOFs by examining all possible spin states of each intermediate across diverse external potentials and pH environments. We found that the spin state featuring a shallow hole trap state and Ni ions with a higher oxidation state serve as strong oxidizing agents, promoting the OER. An external potential-induced spin crossover was observed in each intermediate, resulting in significant changes in the overall reaction and activation energies due to altered energy levels. Combining the constant potential method and the electrochemical nudged elastic band method, we mapped the minimum free energy barriers of the OER under varied external potential and pH by considering the spin crossover effect for both NiAl and NiFe BMOFs. The results showed that NiFe exhibits better OER thermodynamics and kinetics, which is in good agreement with experimentally measured OER polarization curves and Tafel plots. Moreover, we found that the improved OER kinetics of NiFe not only is attributed to lower barriers but also is a result of improved electrical conductivity arising from the synergistic effects of Ni-Fe dual-metal sites. Specifically, replacing the second metal Al with Fe leads to two significant outcomes: a reduction in both the band gap and the effective hole mass compared to NiAl, and the initiation of super- and double-exchange interactions within the Ni-F-Fe chain, thereby enhancing electron transfer and hopping and leading to the improved OER kinetics.
双金属有机金属框架(BMOFs)已展现出卓越的析氧反应(OER)性能,这归因于双金属位点的协同效应。然而,这些双金属协同作用在OER中的重要作用尚未得到充分理解。在本研究中,我们采用密度泛函理论,通过考察不同外部电势和pH环境下各中间体的所有可能自旋态,系统地研究了基于NiAl和NiFe的BMOFs的OER性能。我们发现,具有浅空穴陷阱态的自旋态以及较高氧化态的Ni离子作为强氧化剂,促进了OER。在每个中间体中都观察到了外部电势诱导的自旋交叉,由于能级改变,导致总反应和活化能发生显著变化。结合恒电势方法和电化学微扰弹性带方法,我们通过考虑NiAl和NiFe BMOFs的自旋交叉效应,绘制了不同外部电势和pH下OER的最小自由能垒。结果表明,NiFe表现出更好的OER热力学和动力学,这与实验测量的OER极化曲线和塔菲尔图吻合良好。此外,我们发现NiFe的OER动力学改善不仅归因于较低的能垒,还归因于Ni-Fe双金属位点协同效应导致的电导率提高。具体而言,用Fe取代第二种金属Al会产生两个显著结果:与NiAl相比,带隙和有效空穴质量均降低,并且在Ni-F-Fe链内引发了超交换和双交换相互作用,从而增强了电子转移和跳跃,导致OER动力学得到改善。