4.7 Article

Facet nanoarchitectonics of visible-light driven Ag3PO4 photocatalytic micromotors: Tuning motion for biofilm eradication

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NPG ASIA MATERIALS
卷 14, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41427-022-00409-0

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资金

  1. project Advanced Functional Nanorobots - EFRR [CZ.02.1.01/0.0/0.0/15_003/0000444]
  2. Ministry of Education, Youth and Sports (Czech Republic) grant LL2002 under ERC CZ program
  3. ERDF Multidisciplinary research to increase application potential of nanomaterials in agricultural practice [CZ.02.1.01/0.0/0.0/16_025/0007314]

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This study synthesized self-propelled Ag3PO4 micromotors with different morphologies using a scalable precipitation method. The results revealed that the morphologies determined the motion properties under different conditions and were correlated with photocatalytic activity. Additionally, these micromotors exhibited antibiofilm activity, making them a potential tool for biofilm eradication.
The customized design of micro-/nanomotors represents one of the main research topics in the field of micro-/nanomotors; however, the effects of different crystal facets on micromotor movement are often neglected. In this work, self-propelled amorphous, cubic, and tetrahedral Ag3PO4 particles were synthetized using a scalable precipitation method. Their programmable morphologies exhibited different motion properties under fuel-free and surfactant-free conditions and visible light irradiation. Differences in these motion properties were observed according to morphology and correlated with photocatalytic activity. Moreover, Ag3PO4 micromotors are inherently fluorescent, which allows fluorescence-based tracking. Furthermore, bacterial biofilms represent a major concern in modern society since most of them are antibiotic resistant. The as-prepared self-propelled particles exhibited morphologically dependent antibiofilm activities toward gram-positive and gram-negative bacteria. The enhanced diffusion of the particles promoted biofilm removal in comparison with static control experiments, realizing the possibility of a new class of light-driven biofilm-eradicating micromotors that do not require the use of both H2O2 and UV light. Self-propelled amorphous, cubic, and tetrahedral Ag3PO4 micromotors were synthetized using a scalable precipitation method for antibacterial applications. Their programmable morphologies exhibited different motion properties under fuel-free and surfactant-free conditions and visible light irradiation. Differences in these motion properties were observed according to morphology and correlated with photocatalytic activity. Ag3PO4 micromotors are inherently fluorescent. The as-prepared self-propelled particles exhibited morphologically dependent antibiofilm activities toward eradication of gram-positive and gram-negative bacteria.

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