催化作用
电子转移
氢溢流
离解(化学)
选择性
吸附
化学工程
材料科学
氢
碳纳米管
溢出效应
化学
选择性还原
密度泛函理论
光化学
金属
无机化学
纳米技术
分解
碳纤维
分子
电子
化学物理
反应机理
转移加氢
作者
Shuzhen Lyu,Li Wang,Yifu Song,Ruichen Liu,Rongrong Zhang,Guozhu Liu
摘要
Abstract Pd‐based catalysts often suffer from low H 2 O 2 selectivity and productivity due to O‐O bond cleavage. Herein, we address this challenge by constructing a well‐defined Pd‐SnO 2 interface on carbon nanotubes through a precisely controlled N 2 ‐thermal treatment. This key step ensures the reduction of Pd oxides while maintaining SnO 2 in an oxidized state, inducing moderate electron transfer from SnO 2 to Pd. The optimized Pd‐SnO 2 /CNTs catalyst exhibits outstanding H 2 O 2 productivity of 38,925 mol·kg Pd −1 ·h −1 , with 47.1% H 2 conversion and 52.7% H 2 O 2 selectivity, alongside excellent stability over five cycles. DFT simulations and experimental analysis reveal the Pd‐SnO 2 interface induces a moderate downshift in the d ‐band center of Pd, weakening the adsorption of reaction species on Pd 0 sites. A synergistic dual‐site mechanism occurs via H 2 dissociation and spilled‐over H* species on Pd 0 , while adjacent SnO 2 domains act as active sites for the sequential hydrogenation of activated O 2 , leading to the selective formation of H 2 O 2 .
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