解耦(概率)
吸附
密度泛函理论
材料科学
电解
化学工程
析氧
电解水
合理设计
氢
化学物理
电极
纳米技术
电子结构
化学
无机化学
电催化剂
过渡金属
离子
电压
光谱学
格子(音乐)
离子交换
作者
Xin‐Yi Zhang,Hang Yin,Han‐Hao Liu,Ying‐Di Ge,Cong‐Cong Dang,Shuo‐Hang Zheng,Zhen‐Yi Gu,Junming Cao,Jin‐Zhi Guo,Xing‐Long Wu
标识
DOI:10.1002/anie.202524805
摘要
Abstract Decoupling key intermediates’ adsorption via asymmetric 3d‐5d‐orbital hybridization overcomes the intrinsic scaling relation bottleneck, enabling rational design of high‐performance, durable multifunctional electrocatalysts for anion exchange membrane water electrolyzers (AEMWEs) and Zn–air batteries (ZABs). Here, we reveal that asymmetric 3d‐5d‐orbital hybridization, engineered through the synergy of lattice strain and defect structures in a nitrogen‐doped carbon‐supported PtCo alloy (PtCo@NPC), effectively decouples these adsorption energies of key intermediates. PtCo@NPC demonstrates exceptional multifunctional electrocatalytic performance for the hydrogen evolution reaction, oxygen evolution reaction, and oxygen reduction reaction in alkaline media. Density functional theory calculations suggest that electronic structure modulation tunes the adsorption characteristics of intermediates, while X‐ray absorption fine structure spectroscopy confirms the corresponding changes in the electronic states of surface Pt and Co atoms. When deployed in devices, PtCo@NPC enables AEMWEs to operate stably for 522 h at 1000 mA cm −2 with a voltage decay rate of only 0.103 mV h −1 and empowers ZABs to achieve a long cycle life of over 2520 cycles at 5.0 mA cm −2 . This study highlights electronic‐structure modulation as a powerful strategy for advanced energy technologies.
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