Multi‐Purpose Improvements in Catalytic Activity for Li‐Ion Deposited TiO2, SnO2, and CeO2 Nanoparticles through Oxygen‐Vacancy Control

Author:

Hoang Dung Thanh1ORCID,Lim Donghoon2,Kang Myung Jong3ORCID,Yu Hyejin4ORCID,Pham Vy Ngoc1ORCID,Park Joon Ho2,Ihm Kyuwook5ORCID,Kim Hyun Sung4ORCID,Ahn Hyun S.2ORCID,Lee Hangil1ORCID

Affiliation:

1. Department of Chemistry Sookmyung Women's University Seoul 04310 Republic of Korea

2. Department of Chemistry Yonsei University Seoul 03722 Republic of Korea

3. Department of Chemistry and Advanced Materials Gangneung‐Wonju National University Gangneung 25457 Republic of Korea

4. Department of Chemistry Pukyong National University Busan 48513 Republic of Korea

5. Beamline Research Division Pohang Accelerator Laboratory (PAL) Pohang 37673 Republic of Korea

Abstract

AbstractControlling the number of oxygen vacancies (Vos) in metal‐oxide nanoparticles (MO NPs; TiO2, SnO2, and CeO2) using Li‐ions has been shown to endow MO NPs with improved photocatalytic and electrocatalytic properties. Increasing the number of Vos in nanostructures provides a foundation for efficient multi‐use catalyst designs that facilitate biomass oxidation reactions and improve electrocatalytic activity. Herein, the trends in the properties of MO‐based catalysts are investigated with varying amounts of Vos achieved by Li‐ion deposition. The controlled introduction of Vos into MO NPs tunes the band structures and surface chemistry, leading to enhanced activities of the NPs as photocatalysts for the selective oxidation of 2,5‐hydroxymethylfurfural and as electrocatalysts for acidic hydrogen evolution. It is believed that Li‐ion deposition in the MO matrix provides a novel approach for optimizing oxide‐based catalyst defect engineering, thereby enabling more efficient biomass conversion and water splitting. These findings contribute significantly to the field of multi‐purpose catalysis and are expected to inspire new catalyst designs for a more sustainable future. The results provide a pathway for the facile and efficient engineering of surface defect structures on catalytic metal oxide NPs toward designing high‐performance photocatalysts.

Funder

National Research Foundation of Korea

Publisher

Wiley

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