催化作用
化学
选择性
氧化物
多孔性
多相催化
原子层沉积
光催化
化学工程
分子
分子筛
纳米技术
沉积(地质)
图层(电子)
有机化学
材料科学
生物
工程类
古生物学
沉积物
作者
Christian P. Canlas,Junling Lu,Natalie Ray,Nicolás A. Grosso‐Giordano,Sungsik Lee,Jeffrey W. Elam,Randall E. Winans,Richard P. Van Duyne,Peter C. Stair,Justin M. Notestein
出处
期刊:Nature Chemistry
[Nature Portfolio]
日期:2012-10-26
卷期号:4 (12): 1030-1036
被引量:122
摘要
New porous materials such as zeolites, metal-organic frameworks and mesostructured oxides are of immense practical utility for gas storage, separations and heterogeneous catalysis. Their extended pore structures enable selective uptake of molecules or can modify the product selectivity (regioselectivity or enantioselectivity) of catalyst sites contained within. However, diffusion within pores can be problematic for biomass and fine chemicals, and not all catalyst classes can be readily synthesized with pores of the correct dimensions. Here, we present a novel approach that adds reactant selectivity to existing, non-porous oxide catalysts by first grafting the catalyst particles with single-molecule sacrificial templates, then partially overcoating the catalyst with a second oxide through atomic layer deposition. This technique is used to create sieving layers of Al(2)O(3) (thickness, 0.4-0.7 nm) with 'nanocavities' (<2 nm in diameter) on a TiO(2) photocatalyst. The additional layers result in selectivity (up to 9:1) towards less hindered reactants in otherwise unselective, competitive photocatalytic oxidations and transfer hydrogenations.
科研通智能强力驱动
Strongly Powered by AbleSci AI