电催化剂
催化作用
碳纤维
材料科学
介孔材料
纳米技术
可逆氢电极
过氧化氢
化学
化学工程
电化学
电极
有机化学
物理化学
工作电极
复合材料
复合数
工程类
作者
Juan Du,Yicheng Liu,Ming Sun,Jing Guan,Aibing Chen,Buxing Han
标识
DOI:10.1002/anie.202503385
摘要
As a paradigm‐shifting material platform in energy catalysis, precisely engineered ordered mesoporous carbon spheres emerge as supreme metal‐free electrocatalysts, outperforming conventional carbon‐based counterparts through synergistic structural and electronic innovations. Herein, we architecturally design vertically aligned cylindrical mesoporous carbon spheres with atomic‐level sulfur doping (S‐mC) that establish unprecedented performance benchmarks in the two‐electron oxygen reduction reaction (2e−‐ORR) to hydrogen peroxide. Systematic comparative studies reveal that the S‐mC catalysts achieve exceptional H2O2 selectivity (> 99%) and activity at current density of ‐3.5 mA cm‐2, surpassing state‐of‐the‐art metal‐free catalysts in current density. Impressively, the optimized S‐mC electrocatalyst in a flow cell device achieves an exceptional H2O2 yield of 25 mol gcatalyst‐1 h‐1. The carbon matrix's unique sp2/sp3 hybrid network coupled with S‐induced charge redistribution generates electron‐deficient hotspots that selectively stabilize *OOH intermediates, as evidenced by in situ spectroscopic characterization and DFT calculations. This structural‐electronic synergy endows the carbon framework with metal‐like catalytic efficiency while maintaining inherent advantages of chemical robustness and cost‐effectiveness. The marriage of S‐doping engineering with mesoscopic pore architecture control opens a new way for developing efficient carbon‐based electrocatalyst for oxygen selective reduction to H2O2.
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