Wang Yihao, Li Shanqing, Hou Xu, Cui Tingting, Zhuang Zechao, Zhao Yunhe, Wang Haozhi, Wei Wei, Xu Ming, Fu Qiang, Chen Chunxia, Wang Dingsheng
College of Chemistry, Chemical Engineering & Resource Utilization, Center for Innovative Research in Synthetic Chemistry and Resource Utilization, Northeast Forestry University, Harbin, 150040, P. R. China.
Department of Materials and Environmental Engineering, Chizhou University, Chizhou, 247000, P. R. China.
Adv Mater. 2024 Dec;36(52):e2412598. doi: 10.1002/adma.202412598. Epub 2024 Nov 14.
Electrocatalytic water splitting is long constrained by the sluggish kinetics of anodic oxygen evolution reaction (OER), and rational spin-state manipulation holds great promise to break through this bottleneck. Low-spin Fe (LS, t e ) species are identified as highly active sites for OER in theory, whereas it is still a formidable challenge to construct experimentally. Herein, a new strategy is demonstrated for the effective construction of LS Fe in NiFe-layered double hydroxide (NiFe-LDH) by introducing multiple defects, which induce coordination unsaturation over Fe sites and thus enlarge their d orbital splitting energy. The as-obtained catalyst exhibits extraordinary OER performance with an ultra-low overpotential of 244 mV at the industrially required current density of 500 mA cm, which is 110 mV lower than that of the conventional NiFe-LDH with high-spin Fe (HS, t e ) and superior to most previously reported NiFe-based catalysts. Comprehensive experimental and theoretical studies reveal that LS Fe configuration effectively reduces the adsorption strength of the O* intermediate compared with that of the HS case, thereby altering the rate-determining step from (O* → OOH*) to (OH* → O*) of OER and lowering its reaction energy barrier. This work paves a new avenue for developing efficient spin-dependent electrocatalysts for OER and beyond.
电催化水分解长期以来受到阳极析氧反应(OER)缓慢动力学的限制,合理的自旋态调控有望突破这一瓶颈。理论上,低自旋铁(LS,t e )物种被认为是OER的高活性位点,但在实验中构建它仍然是一项艰巨的挑战。在此,通过引入多个缺陷展示了一种在镍铁层状双氢氧化物(NiFe-LDH)中有效构建LS铁的新策略,这些缺陷会导致铁位点的配位不饱和,从而扩大其d轨道分裂能。所制备的催化剂表现出卓越的OER性能,在工业所需的500 mA cm电流密度下具有244 mV的超低过电位,比具有高自旋铁(HS,t e )的传统NiFe-LDH低110 mV,且优于大多数先前报道的镍铁基催化剂。全面的实验和理论研究表明,与HS情况相比,LS铁构型有效地降低了O中间体的吸附强度,从而将OER的速率决定步骤从(O → OOH*)转变为(OH* → O*),并降低了其反应能垒。这项工作为开发用于OER及其他领域的高效自旋依赖型电催化剂开辟了一条新途径。