Molecular‐Level Design of Polymeric Semiconductor Nanomotors with Multichannel Sensitive 3D Motion for Microorganism Inactivation
Abstract
Abstract The advancement of high‐performance photocatalysts is crucial for the iteration of light‐driven micro/nanomotors. However, most existing light‐driven micro/nanomotors, which are typically fabricated from inorganic semiconductors, suffer from limited visible‐light absorption and inadequate control over 3D motion. Polymeric semiconductors, as emerging photocatalytic materials, feature narrow bandgaps, tunable band structures, and the potential for rational molecular design to optimize activity. This study introduces phenolic resins as efficient semiconductor photocatalysts, establishing a novel platform for constructing light‐driven nanomotors. Among them, the m ‐aminophenol‐formaldehyde resin nanomotor, synthesized via hydrothermal methods, exhibits exceptional mobility due to its efficient photoelectric conversion and charge transfer behavior. Its outstanding photoelectrochemical properties originate from a benzoxazine‐quinoid structure with a low HOMO–LUMO gap (1.90 eV). These nanomotors feature broad‐spectrum light absorption and can respond to various external stimuli, including light intensity, wavelength, and H 2 O 2 concentration, enabling precise control over in‐plane and vertical motion with adjustable speed and directionality. As a proof of concept, the nanomotors demonstrate superior photodynamic inactivation of Karenia mikimotoi under visible light exposure, surpassing TiO 2 nanoparticles in antimicrobial efficiency. This work explores the relationship between molecular structure, photocatalytic performance, and motion behavior, providing instructive insights for designing light‐driven nanomotors with advanced motion manipulation.
Article Details
Authors (18)
Tianyi Liu
Huannuo Tao
Department of Chemistry State Key Laboratory of Molecular Engineering of Polymers Laboratory of Advanced Materials Shanghai Key Lab of Molecular Catalysis and Innovative Materials Collaborative Innovation Center of Chemistry for Energy Materials Fudan University Shanghai P. R. China
Qingdong Chai
College of Materials Science and Chemical Engineering Harbin Engineering University Harbin Heilongjiang 150001 P.R. China
Hang Shi
Ziqi Zheng
Zhenning Sun
Guoxing Zhang
Qingdao Perovskite Photovoltaic and Application Engineering Research Center, Institute of Carbon Neutrality, College of Chemical and Biological Engineering Shandong University of Science and Technology Qingdao P. R. China
Xiangjun Wang
Jixin Zhou
Qingdao Innovation and Development Center Harbin Engineering University Qingdao Shandong 266400 P.R. China
Abuduheiremu Awati
Department of Chemistry, State Key Laboratory of Molecular Engineering of Polymers, Laboratory of Advanced Materials, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials
Qirui Liang
Qingdao Innovation and Development Center, Laboratory of Underwater Intelligence, Qingdao Innovation and Development Base
Yanjun He
Qingdao Innovation and Development Center Laboratory of Underwater Intelligence Qingdao Innovation and Development Base Harbin Engineering University Qingdao P. R. China
Dazhang Zhu
Shanghai Key Lab of Chemical Assessment and Sustainability School of Chemical Science and Engineering Tongji University Shanghai P. R. China
Mingxian Liu
Yue Shi
Department of Chemistry, School of Science
Kang Liang
School of Chemical Engineering and School of Biomedical Engineering
Jian Liu
Biao Kong
Department of Orthopaedic Surgery, Zhongshan Hospital