催化作用
电化学
材料科学
合金
密度泛函理论
质子交换膜燃料电池
电荷密度
功率密度
工作(物理)
吸附
化学工程
原子轨道
甲醇
活化能
化学
无机化学
混合功能
电子结构
活动中心
氧气
化学物理
相(物质)
分析化学(期刊)
态密度
物理化学
格子(音乐)
氧化还原
作者
Yuanyan Luo,Yang Liu,Yubing Li,Chengfu Tan,Zhiqun Tian,Shuyan Gao,Xiaoma Tao,Panagiotis Tsiakaras,Peikang Shen
标识
DOI:10.1016/j.cej.2025.168607
摘要
Based on an entropy-driven strategy, novel multi-component high-entropy alloy nanobranches (HEA NBs) are synthesized to solve the challenges of limited intrinsic activity and poor durability in oxygen reduction reactions (ORR). The unique HEA NBs significantly enhances facet density and generates abundant unsaturated active sites through lattice distortion effects, thereby adjusting the d-band center and change electronic structure, effectively reducing the adsorption energy barrier, optimizing the activation energy for the four-electron pathway. Electrochemical tests reflect that HEA NBs have a half-wave potential of 0.943 V and mass activity of 1.75 (A mg −1 Pt ), which is 11.7 times higher than that of commercial Pt/C, and decays about 22 % after 30,000 cycles. Notably, in the proton exchange membrane fuel cell, the peak power density of 1.61 W cm −2 is achieved by HEA NBs at an ultra-low load. Geometric phase analysis reveals a compressive strain effect driven by entropy. This work establishes a composition-structure-performance relationship for high-entropy alloys, providing a new potential for designing electrocatalysts with enhanced activity and stability. • HEA NBs enhances facet density and abundant coordinatively unsaturated active sites. • Multicomponent d-band center modulation enables electronic structure reconstruction. • Co enhancing carriers as electron traps. W's 5d orbitals exhibit broadened widened peaks. • HEA NBs exhibits very good activity and stability; performing excellently in PEMFCs.
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