State Key Laboratory of Advanced Welding and Joining, Flexible Printed Electronic Technology Center, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, China.
School of Engineering, Edith Cowan University, Joondalup, WA 6027, Australia.
J Colloid Interface Sci. 2021 Apr 15;588:510-521. doi: 10.1016/j.jcis.2020.12.097. Epub 2020 Dec 29.
Because of micro/nanoscale manipulation and task-performing capability, micro/nanomotors (MNMs) have attracted lots of research interests for potential applications in biomedical and environmental applications. Owing to the low-cost, good motion behavior, and environmental friendliness, various low-cost metal oxides based MNMs become promising alternatives to the precious metal based MNMs, in particular for environmental remediation applications. Hereby, we demonstrate the facile and scalable fabrication of two types of bubble-propelled iron oxides-MnO core-shell micromotors (FeO-MnO and FeO-MnO) for pollutant removal. The FeO-MnO micromotor exhibits efficient removals of both aqueous organics and suspended microplastics via the synergy of catalytic degradation, surface adsorption, and adsorptive bubbles separations mechanisms. The adsorptive bubbles separation achieved more than 10% removal of the suspended microplastics from the polluted water in 2 h. We clarified the major contributions of different remediation mechanisms in pollutants removals, and the findings may be beneficial to a wide range of environmental applications of MNMs.
由于微/纳米级操作和任务执行能力,微/纳米马达(MNMs)引起了人们的广泛关注,它们在生物医学和环境应用方面具有潜在的应用前景。由于成本低、运动性能好、对环境友好,各种基于低成本金属氧化物的 MNMs 成为了贵金属基 MNMs 的有前途的替代品,特别是在环境修复应用方面。在这里,我们展示了两种气泡推进型氧化铁-氧化锰核壳微米马达(FeO-MnO 和 FeO-MnO)的简便和可扩展的制造方法,用于去除污染物。FeO-MnO 微米马达通过催化降解、表面吸附和吸附气泡分离机制的协同作用,有效地去除了水中的有机物和悬浮微塑料。在 2 小时内,吸附气泡分离从污染水中去除了超过 10%的悬浮微塑料。我们阐明了不同修复机制在污染物去除中的主要贡献,这一发现可能对 MNMs 在广泛的环境应用中具有重要意义。