密度泛函理论
化学
吸附
纳米团簇
催化作用
氧还原
纳米颗粒
氧还原反应
极化(电化学)
化学工程
无机化学
铂金
电化学
甲醇
氧气
功率密度
纳米晶
膜
纳米技术
光化学
粒径
工作(物理)
燃料电池
电催化剂
粒子(生态学)
材料科学
析氧
氧化还原
电极
作者
Cong‐Yi Du,Zi‐Qi Ge,Lv‐Hao Ouyang,Hong Yi-xu,Hua‐Ying Ma,Xiao Tong Wang,Zhao-Qing Liu,Cong‐Yi Du,Zi‐Qi Ge,Lv‐Hao Ouyang,Hong Yi-xu,Hua‐Ying Ma,Xiao Tong Wang,Zhao-Qing Liu
标识
DOI:10.1002/anie.202515517
摘要
Abstract The development of high‐performance oxygen reduction reaction (ORR) electrocatalysts operable across broad pH ranges is hindered by strong adsorption of hydroxyl intermediates (*OH). This work introduces a conceptually novel strategy of spin‐state modulation via interfacial engineering to regulate platinum nanocrystals anchored on atomically dispersed Fe‐N‐C substrates (Pt/Fe SA ‐NC). Based on density functional theory (DFT) predictions, we construct a spin‐state‐tunable architecture by precisely controlling Pt particle size (2–8 nm), which induces spin‐matching effects that effectively mitigate *OH over‐binding in pH‐dependent ORR path. Mechanistic studies indicate that the synergy between FeN 4 ‐mediated metal‐support interactions and size‐dependent spin polarization facilitates charge transfer, weakening *OH adsorption and promoting its desorption. In alkaline conditions, ∼2 nm Pt nanoclusters with moderate spin density achieve a peak power density of 179 mW cm −2 in Zn‐air batteries with 150 h stability. Under acidic media, ∼8 nm Pt nanoparticles with low‐spin configuration deliver a mass activity of 0.65 A mg Pt −1 and a peak power density of 730 mW cm −2 in proton‐exchange membrane fuel cells (PEMFCs), outperforming commercial Pt/C and retaining 90% activity after 3000 cycles. This finding provides a spin‐engineering paradigm for designing advanced electrocatalysts with ultralow Pt loading.
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