Superlattice Nanofilm on a Touchscreen for Photoexcited Bacteria and Virus Killing by Tuning Electronic Defects in the Heterointerface

Author:

Li Jun1234,Wang Chaofeng134,Wu Shuilin24ORCID,Cui Zhenduo2,Zheng Yufeng4,Li Zhaoyang2,Jiang Hui2,Zhu Shengli2,Liu Xiangmei13ORCID

Affiliation:

1. School of Health Science & Biomedical Engineering Hebei University of Technology Xiping Avenue 5340, Beichen District Tianjin 300401 P. R. China

2. School of Materials Science & Engineering the Key Laboratory of Advanced Ceramics and Machining Technology by the Ministry of Education of China Tianjin University Tianjin 300072 P. R. China

3. Biomedical Materials Engineering Research Center Hubei Key Laboratory of Polymer Materials Ministry‐of‐Education Key Laboratory for the Green Preparation and Application of Functional Materials School of Materials Science and Engineering Hubei University Wuhan 430062 P. R. China

4. School of Materials Science & Engineering Peking University Beijing 100871 P. R. China

Abstract

AbstractCurrently, the global COVID‐19 pandemic has significantly increased the public attention toward the spread of pathogenic viruses and bacteria on various high‐frequency touch surfaces. Developing a self‐disinfecting coating on a touchscreen is an urgent and meaningful task. Superlattice materials are among the most promising photocatalysts owing to their efficient charge transfer in abundant heterointerfaces. However, excess electronic defects at the heterointerfaces result in the loss of substantial amounts of photogenerated charge carrier. In this study, a ZnOFe2O3 superlattice nanofilm is designed via atomic layer deposition for photocatalytic bactericidal and virucidal touchscreen. Additionally, electronic defects in the superlattice heterointerface are engineered. Photogenerated electrons and holes will be rapidly separated and transferred into ZnO and Fe2O3 across the heterointerfaces owing to the formation of ZnO, FeO, and ZnFe covalent bonds at the heterointerfaces, where ZnO and Fe2O3 function as electronic donors and receptors, respectively. The high generation capacity of reactive oxygen species results in a high antibacterial and antiviral efficacy (>90%) even against drug‐resistant bacteria and H1N1 viruses under simulated solar or low‐power LED light irradiation. Meanwhile, this superlattice nanofilm on a touchscreen shows excellent light transmission (>90%), abrasion resistance (106 times the round‐trip friction), and biocompatibility.

Funder

National Natural Science Foundation of China

China National Funds for Distinguished Young Scientists

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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