过电位
材料科学
自催化
催化作用
密度泛函理论
合金
纳米线
化学工程
成核
离解(化学)
电催化剂
纳米技术
物理化学
计算化学
热力学
冶金
化学
电化学
物理
有机化学
电极
工程类
作者
Lei Gao,Zhilong Yang,Tulai Sun,Xin Tan,Wenchuan Lai,Mengfan Li,Jeonghyeon Kim,Yangfan Lu,Sang‐Il Choi,Wenhua Zhang,Chao Ma,Sean C. Smith,Yi‐Ge Zhou,Hongwen Huang
标识
DOI:10.1002/aenm.202103943
摘要
Abstract Alloying noble metal catalysts with early transition metals (ETMs) has shown great promise by simultaneously boosting catalytic activity and durability because of their strong electronic interactions. However, the very negative reduction potential of ETMs has posed great challenges for the synthesis of the desired alloy catalysts, not to mention the structure‐controlled synthesis. Here an autocatalytic surface reduction‐assisted strategy is reported to realize the controllable synthesis of ultrathin PtW alloy nanowires (NWs). The experimental evidence and density functional theory (DFT) calculations demonstrate that the preformed Pt NWs in the synthesis serve as the catalyst to facilitate the reduction of W x + species through the autocatalytic surface reduction mechanism. Using the alkaline hydrogen evolution reaction (HER) as a model reaction, the as‐synthesized PtW NWs/C catalyst shows an ultralow overpotential of 18 mV at 10 mA cm –2 and a high mass activity of 6.13 A mg –1 Pt at an overpotential of 100 mV, ranking it among the most active catalysts. The dual roles of alloyed W atoms are further uncovered by theoretical simulations, involving the ensemble effect for accelerating H 2 O dissociation and a ligand effect for optimizing the hydrogen adsorption strength.
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