催化作用
吸附
氧化物
锰
金属
电子转移
材料科学
氧化铌
电子结构
分子
原子轨道
分子轨道
化学
铌
工作(物理)
化学工程
原位
化学物理
无机化学
氧化锰
氧化还原
继电器
催化氧化
多相催化
纳米技术
甲醛
活化能
降级(电信)
反应性(心理学)
电子
电子定域函数
摩尔比
作者
Fanyu Wang,Zhongsen Wang,Qian Jiang Zhu,Jintong Lan,Liu Yi,Xiao Liu
摘要
Abstract Enhancing low‐temperature activity of metal oxides in gas‐solid catalysis remains a significant challenge. Here, we propose a single‐atom niobium (Nb) regulation strategy to optimize the d‐electron structure of manganese in MnO 2 catalysts for 200 ppm formaldehyde oxidation with 37.5% relative humidity. The Nb‐doped MnO 2 demonstrates remarkable catalytic performance, lowering T 90 (the temperature at which 90% conversion is reached) by 42 °C compared to undoped MnO 2 . This enhancement originates from directional control of d‐orbital splitting energy and optimized e g orbital filling of Mn, which collectively reduces the electron‐transfer barrier during the reaction. In situ characterization and DFT calculation also reveal a synergistic adsorption configuration where HCHO and H 2 O molecules form an electron relay transfer network. Our work establishes atomic‐level electronic structure engineering as an effective approach to improve catalytic efficiency, while the identified electron relay mechanism provides fundamental insights into the metal oxide interface interactions for heterogeneous catalytic systems.
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