Ultrathin Co3O4 Layers Realizing Optimized CO2 Electroreduction to Formate

Angew Chem Int Ed Engl. 2016 Jan 11;55(2):698-702. doi: 10.1002/anie.201509800. Epub 2015 Nov 24.

Abstract

Electroreduction of CO2 into hydrocarbons could contribute to alleviating energy crisis and global warming. However, conventional electrocatalysts usually suffer from low energetic efficiency and poor durability. Herein, atomic layers for transition-metal oxides are proposed to address these problems through offering an ultralarge fraction of active sites, high electronic conductivity, and superior structural stability. As a prototype, 1.72 and 3.51 nm thick Co3O4 layers were synthesized through a fast-heating strategy. The atomic thickness endowed Co3O4 with abundant active sites, ensuring a large CO2 adsorption amount. The increased and more dispersed charge density near Fermi level allowed for enhanced electronic conductivity. The 1.72 nm thick Co3O4 layers showed over 1.5 and 20 times higher electrocatalytic activity than 3.51 nm thick Co3O4 layers and bulk counterpart, respectively. Also, 1.72 nm thick Co3O4 layers showed formate Faradaic efficiency of over 60% in 20 h.

Keywords: CO2 electroreduction; atomic layers; cobalt oxide; formate.

Publication types

  • Research Support, Non-U.S. Gov't