合理设计
催化作用
结晶度
材料科学
Crystal(编程语言)
氧化物
相(物质)
产量(工程)
甲醇
四方晶系
化学工程
纳米技术
选择性表面
纳米材料基催化剂
化学物理
多相催化
选择性
二甲醚
活动站点
动力控制
化学
晶体工程
晶体结构
密度泛函理论
作者
Yong Peng,Yu-Ting Miao,Lixuan Ma,Dan-Yang Zhou,Wenhua Feng,Liyu Liang,Ming-Ming Yu,Hai-Chao Hu,Chen-Wei Wang,Qinghui Li,Lijun Wang,Wenwu Sun,Hongyun Zhao,Guiru Wang,Riguang Zhang,Jing Du,Lingjun Chou
标识
DOI:10.1021/acscatal.5c08821
摘要
The efficient hydrogenation of CO2 to methanol and dimethyl ether (DME) is a cornerstone of the circular carbon economy, yet it is constrained by the kinetically sluggish activation of H2 on oxide catalysts. While metal–support interactions offer a lever for tuning activity, a rational strategy to precisely control the spatial distribution of active sites remains a fundamental challenge. Here, we report that the crystallinity of a common oxide support, ZrO2, can be engineered to dictate the surface enrichment of the active GaOx phase in GaOx/ZrO2 catalysts, a phenomenon we coin “crystal phase-confined surface enrichment”. Through a combination of in situ spectroscopy, kinetic analysis, and DFT calculations, we demonstrate that the tetragonal ZrO2 phase selectively suppresses the bulk migration of GaOx, thereby concentrating it on the surface. This structural feature creates a highly active interface that significantly enhances H2 activation, reducing its onset temperature by 25 K and enabling a methanol and DME selectivity of 79.5% with a CO2 conversion yield of 7.25%. Our findings establish support crystallinity engineering as a general design principle for manipulating active site distribution, propelling catalyst design from empirical tuning to predictive structure control for a wide range of heterogeneous catalytic reactions.
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