Xia Mengxue, Chen Feng, Liang Haojie, Gan Manyuan, Jin Bixian, Hao Bing, Shen Yongqing, Zhou Yibing, Yan Xiaoli, Song Yanhui, Guo Junjie
Key Laboratory of Interface Science and Engineering in Advanced Materials of Ministry of Education, College of Materials Science and Engineering, Taiyuan University of Technology, Taiyuan, Shanxi 030024, China.
College of Materials Science and Engineering, Taiyuan University of Technology, Taiyuan, Shanxi 030024, China.
ACS Appl Mater Interfaces. 2025 Apr 2;17(13):19826-19837. doi: 10.1021/acsami.5c02365. Epub 2025 Mar 19.
Modulating the coordination environment of metal active sites and adjacent atoms significantly enhances the catalytic activity of heterogeneous catalysts owing to the local synergistic effect between metal sites and supports. While layered double hydroxide (LDH)-supported Pt catalysts exhibit complementary advantages and exceptional performance in overall water splitting (OWS), the absence of a robust coordination structure between Pt and LDH constrains their activity and stability. Herein, we report a coordination engineering strategy to alter the coordination structure of Pt on the surface of NiFe LDH using atomic layer deposition (ALD) for OWS. The synthesized Pt/NiFe LDH-O catalyst, featuring the 2-coordinate Pt-OH and 6-coordinate Pt-Pt, exhibits a η = 14 mV for hydrogen evolution reaction (HER), a η = 287 mV for oxygen evolution reaction (OER), and an effective OWS activity (η = 1.496 V) for over 200 h. Combining structural and electrochemical characterizations, we confirmed that the coordination engineering affected the nucleation and growth of Pt on NiFe LDH, leading to a decrease of Pt-OH coordination and an increase of Pt-Pt coordination, thereby enhancing the hydrolysis capability of Pt and shifting the rate-determining step (RDS) from the Volmer step to the Heyrovsky step, which contributed to the excellent OWS performance. The density functional theory (DFT) results demonstrated that the electronic structure of NiFe LDH is considerably regulated by an increase in Pt-Pt coordination, facilitating charge redistribution. Our investigation provides deep insights into the coordination regulating the electrocatalytic activity of LDH-supported metal catalysts.
由于金属位点与载体之间的局部协同效应,调节金属活性位点和相邻原子的配位环境可显著提高多相催化剂的催化活性。虽然层状双氢氧化物(LDH)负载的Pt催化剂在全水解(OWS)中表现出互补优势和卓越性能,但Pt与LDH之间缺乏强大的配位结构限制了它们的活性和稳定性。在此,我们报道了一种配位工程策略,通过原子层沉积(ALD)改变NiFe LDH表面Pt的配位结构以用于OWS。合成的Pt/NiFe LDH-O催化剂具有2配位的Pt-OH和6配位的Pt-Pt,析氢反应(HER)的过电位η = 14 mV,析氧反应(OER)的过电位η = 287 mV,并且在超过200小时内具有有效的OWS活性(η = 1.496 V)。结合结构和电化学表征,我们证实配位工程影响了Pt在NiFe LDH上的成核和生长,导致Pt-OH配位减少和Pt-Pt配位增加,从而增强了Pt的水解能力,并将速率决定步骤(RDS)从Volmer步骤转变为Heyrovsky步骤,这有助于实现优异的OWS性能。密度泛函理论(DFT)结果表明,Pt-Pt配位的增加显著调节了NiFe LDH的电子结构,促进了电荷重新分布。我们的研究为配位调节LDH负载金属催化剂的电催化活性提供了深入见解。