Center for Advanced Functional Nanorobots, Department of Inorganic Chemistry , University of Chemistry and Technology Prague , Technická 5 , 166 28 Prague , Czech Republic.
Department of Biochemistry and Microbiology , University of Chemistry and Technology Prague , Technická 5 , 166 28 Prague , Czech Republic.
ACS Nano. 2019 Jul 23;13(7):8135-8145. doi: 10.1021/acsnano.9b03184. Epub 2019 Jul 8.
Light-driven micro/nanomotors represent the next generation of automotive devices that can be easily actuated and controlled by using an external light source. As the field evolves, there is a need for developing more sophisticated micromachines that can fulfill diverse tasks in complex environments. Herein, we introduce single-component BiVO micromotors with well-defined micro/nanostructures that can swim both individually and as collectively assembled entities under visible-light irradiation. These devices can perform cargo loading and transport of passive particles as well as living microorganisms without any surface functionalization. Interestingly, after photoactivation, the BiVO micromotors exhibited an ability to seek and adhere to yeast cell walls, with the possibility to control their attachment/release by switching the light on/off, respectively. Taking advantage of the selective motor/fungal cells attachment, the fungicidal activity of BiVO micromotors under visible illumination was also demonstrated. The presented star-shaped BiVO micromotors, obtained by a hydrothermal synthesis, contribute to the potential large-scale fabrication of light-powered micromotors. Moreover, these multifunctional single-component micromachines with controlled self-propulsion, collective behavior, cargo transportation, and photocatalytic activity capabilities hold promising applications in sensing, biohybrids assembly, cargo delivery, and microbiological water pollution remediation.
光驱动的微/纳米马达代表了下一代汽车设备,它们可以通过使用外部光源轻松地进行驱动和控制。随着该领域的发展,需要开发更复杂的微型机器,这些微型机器可以在复杂环境中完成各种任务。在这里,我们介绍了具有明确定义的微/纳米结构的单组分 BiVO 微马达,这些微马达可以在可见光照射下单独和集体组装的实体中游泳。这些器件可以在无需任何表面功能化的情况下进行货物装载和被动颗粒以及活微生物的运输。有趣的是,在光激活后,BiVO 微马达表现出了寻找和粘附酵母细胞壁的能力,并且有可能通过分别打开/关闭光来控制其附着/释放。利用选择性的马达/真菌细胞附着,还证明了 BiVO 微马达在可见光照射下的杀菌活性。所提出的星形 BiVO 微马达通过水热合成获得,有助于大规模制造光驱动的微马达。此外,这些具有受控自推进、集体行为、货物运输和光催化活性能力的多功能单组分微型机器在传感、生物杂交组装、货物输送和微生物水污染修复等方面具有广阔的应用前景。