A Tandem Catalyst with Multiple Metal Oxide Interfaces Produced by Atomic Layer Deposition

Angew Chem Int Ed Engl. 2016 Jun 13;55(25):7081-5. doi: 10.1002/anie.201600799. Epub 2016 Apr 28.

Abstract

Ideal heterogeneous tandem catalysts necessitate the rational design and integration of collaborative active sites. Herein, we report on the synthesis of a new tandem catalyst with multiple metal-oxide interfaces based on a tube-in-tube nanostructure using template-assisted atomic layer deposition, in which Ni nanoparticles are supported on the outer surface of the inner Al2 O3 nanotube (Ni/Al2 O3 interface) and Pt nanoparticles are attached to the inner surface of the outer TiO2 nanotube (Pt/TiO2 interface). The tandem catalyst shows remarkably high catalytic efficiency in nitrobenzene hydrogenation over Pt/TiO2 interface with hydrogen formed in situ by the decomposition of hydrazine hydrate over Ni/Al2 O3 interface. This can be ascribed to the synergy effect of the two interfaces and the confined nanospace favoring the instant transfer of intermediates. The tube-in-tube tandem catalyst with multiple metal-oxide interfaces represents a new concept for the design of highly efficient and multifunctional nanocatalysts.

Keywords: atomic layer depositon; heterogeneous catalysis; hydrogenation; metal-oxide interfaces; nanocatalysis.

Publication types

  • Research Support, Non-U.S. Gov't