Chalil Oglou Ramadan, Ulusoy Ghobadi Turkan Gamze, Hegner Franziska Simone, Galán-Mascarós José Ramón, López Núria, Ozbay Ekmel, Karadas Ferdi
UNAM-National Nanotechnology Research Center, Bilkent University, 06800, Ankara, Turkey.
NANOTAM-Nanotechnology Research Center, Bilkent University, 06800, Ankara, Turkey.
Angew Chem Int Ed Engl. 2023 Oct 26;62(44):e202308647. doi: 10.1002/anie.202308647. Epub 2023 Aug 17.
Electrocatalytic processes involving the oxygen evolution reaction (OER) present a kinetic bottleneck due to the existence of linear-scaling relationships, which bind the energies of the different intermediates in the mechanism limiting optimization. Here, we offer a way to break these scaling relationships and enhance the electrocatalytic activity of a Co-Fe Prussian blue modified electrode in OER by applying external stimuli. Improvements of ≈11 % and ≈57 % were achieved under magnetic field (0.2 T) and light irradiation (100 mW cm ), respectively, when working at fixed overpotential, η=0.6 V at pH 7. The observed enhancements strongly tie in with the intermetallic charge transfer (IMCT) intensity between Fe and Co sites. Density Functional Theory simulations suggest that tuning the IMCT can lead to a change of the OER mechanism to an external stimuli-sensitive spin crossover-based pathway, which opens the way for switchable electrocatalytic devices.
由于存在线性标度关系,涉及析氧反应(OER)的电催化过程存在动力学瓶颈,这种关系限制了机理中不同中间体的能量,从而限制了优化。在此,我们提供了一种打破这些标度关系的方法,并通过施加外部刺激来增强钴铁普鲁士蓝修饰电极在OER中的电催化活性。在固定过电位η = 0.6 V(pH = 7)下工作时,分别在磁场(0.2 T)和光照射(100 mW cm)下实现了约11%和约57%的性能提升。观察到的性能增强与铁和钴位点之间的金属间电荷转移(IMCT)强度密切相关。密度泛函理论模拟表明,调节IMCT可导致OER机理转变为基于外部刺激敏感的自旋交叉途径,这为可切换电催化装置开辟了道路。