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Hydroxy‐Group‐Enriched In<sub>2</sub>O<sub>3</sub> Facilitates CO<sub>2</sub> Electroreduction to Formate at Large Current Densities

Zhengzheng Liu, Ximeng Lv, Junbo Zhang, Anxiang Guan, Chao Yang, Shuai Yan, Yangshen Chen, Kunhao Liu, Gengfeng Zheng

2022Advanced Materials Interfaces37 citationsDOI

Abstract

Abstract The development of catalysts and electrochemical systems for CO 2 electroreduction has achieved substantial progress recently, while the long‐time operation of electrolyzing CO 2 to formate with high activity and selectivity remains as a major challenge, due to the continuous carbonate precipitation at elevated pHs. Herein, hexagonal phase In 2 O 3 (h‐In 2 O 3 ) is demonstrated with a monodispersed porous nanosphere structure that can serve as an efficient electrocatalyst for converting CO 2 to formate, with a peak Faradaic efficiency of 98%, high partial current densities for producing formate, and outstanding electrochemical stability, substantially exceeding cubic phase In 2 O 3 and most of the previously reported electrocatalysts. Both experimental and theoretical studies reveal that the excellent activity and stability are attributed to the enhanced adsorption and activation of CO 2 on the h‐In 2 O 3 surface, and the rich surface hydroxyl groups further facilitate the inhibition of carbonate formation. This work suggests attractive features of the phase engineering to modulate surface hydroxyl groups for efficient and robust catalysts for CO 2 electroreduction.

Topics & Concepts

FormateElectrocatalystElectrochemistryMaterials scienceFaraday efficiencyCatalysisAdsorptionInorganic chemistrySelectivityPhase (matter)PrecipitationChemical engineeringElectrodePhysical chemistryChemistryOrganic chemistryEngineeringMeteorologyPhysicsCO2 Reduction Techniques and CatalystsIonic liquids properties and applicationsAdvanced Photocatalysis Techniques
Hydroxy‐Group‐Enriched In<sub>2</sub>O<sub>3</sub> Facilitates CO<sub>2</sub> Electroreduction to Formate at Large Current Densities | Litcius