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Droplet microfluidic synthesis of shape-tunable self-propelled catalytic micromotors and their application to water treatment

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Abstract

Self-propelled catalytic micromotors have shown significant potential in the fields from biomedicine to environmental remediation. Here, we developed a microfiber-confined microfluidic approach to controllably fabricate droplet-templated micromotors for water treatment. Utilizing transformable droplets embedded in microfibers as the template, the morphology of microparticles can be controlled from sphere, spindle to drum shape. Moreover, by simply adjusting the flow rates, precise control over the shape and size of resulting microparticles can be achieved. By coating MnO2 and Fe3O4 nanoparticles on the surface, micromotors propelled by a catalytic reaction were functionalized which can fulfill specific tasks. The incorporation of Fe3O4 nanoparticles endows micromotors with magnetic functionality, which also can serve as an effective Fenton-like catalyst for organic pollutants degradation. Benefiting from the MnO2 nanoparticles for catalytic decomposition of H2O2 to generate gas bubbles, the micromotors are capable of moving autonomously, which further enhances the mass transfer in solution. Consequently, the obtained micromotors exhibited good bubble-propelled motion, effective pollutant degradation capacity, as well as easy recovery by magnetic attraction. The flexible strategy allows for the generation of advanced microparticles with well-controlled structures, thus showing highly promising potential for various engineering applications.

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References

  1. Sanchez S, Soler L, Katuri J (2015) Chemically powered micro- and nanomotors. Angew Chem Int Ed 54(5):1414–1444

    Article  CAS  Google Scholar 

  2. Xu T, Gao W, Xu LP, Zhang X, Wang S (2017) Fuel-free synthetic micro-/nanomachines. Adv Mater 29(9):1603250

    Article  Google Scholar 

  3. Chen XZ, Jang B, Ahmed D, Hu C, De Marco C, Hoop M, Mushtaq F, Nelson BJ, Pane S (2018) Small-scale machines driven by external power sources. Adv Mater 30(15):1705061

    Article  Google Scholar 

  4. Yan X, Zhou Q, Yu J, Xu T, Deng Y, Tang T, Feng Q, Bian L, Zhang Y, Ferreira A, Zhang L (2015) Magnetite nanostructured porous hollow helical microswimmers for targeted delivery. Adv Funct Mater 25(33):5333–5342

    Article  CAS  Google Scholar 

  5. Roberto M, Águeda M, Miguel Á, Beatriz J, Alberto E (2022) Prussian blue/chitosan micromotors with intrinsic enzyme-like activity for (bio)-sensing assays. Anal Chem 94(140):5575–5582

    Google Scholar 

  6. Ye H, Wang Y, Xu D, Liu X, Liu S, Ma X (2021) Design and fabrication of micro/nano-motors for environmental and sensing applications. Appl Mater Today 23:101007

    Article  Google Scholar 

  7. Chen L, Yuan H, Chen S, Zheng C, Wu X, Li Z, Liang C, Dai P, Wang Q, Ma X, Yan X (2021) Cost-effective, high-yield production of biotemplated catalytic tubular micromotors as self-propelled microcleaners for water treatment. ACS Appl Mater Interfaces 13(26):31226–31235

    Article  CAS  Google Scholar 

  8. Tong J, Wang D, Wang D, Xu F, Duan R, Zhang D, Fan J, Dong B (2020) Visible-light-driven water-fueled ecofriendly micromotors based on iron phthalocyanine for highly efficient organic pollutant degradation. Langmuir 36(25):6930–6937

    Article  CAS  Google Scholar 

  9. Parmar J, Vilela D, Villa K, Wang J, Sanchez S (2018) Micro- and nanomotors as active environmental microcleaners and sensors. J Am Chem Soc 140(30):9317–9331

    Article  CAS  Google Scholar 

  10. Moo JGS, Mayorga-Martinez CC, Wang H, Khezri B, Wei ZT, Pumera M (2017) Nano/microrobots meet electrochemistry. Adv Funct Mater 27:1604759

    Article  Google Scholar 

  11. Lin X, Wu Z, Wu Y, Xuan M, He Q (2016) Self-propelled micro-/nanomotors based on controlled assembled architectures. Adv Mater 28(6):1060–1072

    Article  CAS  Google Scholar 

  12. Hu N, Sun M, Lin X, Gao C, Zhang B, Zheng C, **e H, He Q (2018) Self-propelled rolled-up polyelectrolyte multilayer microrockets. Adv Funct Mater 28(25):1705684

    Article  Google Scholar 

  13. Yu YR, Shang LR, Gao W, Zhao Z, Wang H, Zhao YJ (2017) Microfluidic lithography of bioinspired helical micromotors. Angew Chem Int Ed 129:12295–12299

    Article  Google Scholar 

  14. Chen A, Ge XH, Chen J, Zhang L, Xu JH (2017) Multi-functional micromotor: microfluidic fabrication and water treatment application. Lab Chip 17(24):4220–4224

    Article  CAS  Google Scholar 

  15. Zou M, Wang J, Yu Y, Sun L, Wang H, Xu H, Zhao Y (2018) Composite multifunctional micromotors from droplet microfluidics. ACS Appl Mater Inter 10(40):34618–34624

    Article  CAS  Google Scholar 

  16. Su Y, Zhang M, Wang W, Deng C, Peng J, Liu Z, Faraj Y, Ju X, **e R, Chu L (2019) Bubble-propelled hierarchical porous micromotors from evolved double emulsions. Ind Eng Chem Res 58(4):1590–1600

    Article  CAS  Google Scholar 

  17. Zhou C, Zhu P, Tian Y, Xu M, Wang L (2019) Engineering micromotors with droplet microfluidics. ACS Nano 13(6):6319–6329

    Article  CAS  Google Scholar 

  18. Deng X, Ren Y, Hou L, Liu W, Jia Y, Jiang H (2018) Electric field-induced cutting of hydrogel microfibers with precise length control for micromotors and building blocks. ACS Appl Mater Inter 10(46):40228–40237

    Article  CAS  Google Scholar 

  19. Chaurasia AS, Sajjadi S (2016) Flexible Asymmetric encapsulation for dehydration-responsive hybrid microfibers. Small 12(30):4146–4155

    Article  CAS  Google Scholar 

  20. Cai L, Bian F, Chen H, Guo J, Wang Y, Zhao Y (2020) Anisotropic microparticles from microfluidics. Chem 7:1–44

    Google Scholar 

  21. Huang L, Wu K, He X, Yang Z, Ji H (2021) One-Step microfluidic synthesis of spherical and bullet-like alginate microcapsules with a core-shell structure. Colloid Surfaces A 608:125612

    Article  CAS  Google Scholar 

  22. Ye H, Wang Y, Liu X, Xu D, Yuan H, Sun H, Wang S, Ma X (2021) Magnetically steerable iron oxides-manganese dioxide core-shell micromotors for organic and microplastic removals. J Colloid Interf Sci 588:510–521

    Article  CAS  Google Scholar 

  23. Liu W, Ge H, Chen X, Lu X, Gu Z, Li J, Wang J (2019) Fish-scale-like intercalated metal oxide-based micromotors as efficient water remediation agents. ACS Appl Mater Inter 11:16164–16173

    Article  CAS  Google Scholar 

  24. Wang B, Ji F, Yu J, Yang L, Wang Q, Zhang L (2019) Bubble-assisted three-dimensional ensemble of nanomotors for improved catalytic performance. iScience 19:760–771

    Article  Google Scholar 

  25. Nourhani A, Karshalev E, Soto F, Wang J (2020) Multigear bubble propulsion of transient micromotors. Research 2020:7823615

  26. Lin X, Zhu H, Zhao Z, You C, Kong Y, Zhao Y, Liu J, Chen H, Shi X, Makarov D, Mei Y (2020) Hydrogel-based janus micromotors capped with functional nanoparticles for environmental applications. Adv Mater Technol 5(8):2000279

    Article  CAS  Google Scholar 

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Acknowledgements

This work was financially supported by Shandong Provincial Natural Science Foundation, China (Grant No. ZR2020KB009).

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Correspondence to Weilin Guo.

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Qu, C., Ren, M., Qiao, Z. et al. Droplet microfluidic synthesis of shape-tunable self-propelled catalytic micromotors and their application to water treatment. J Mater Sci 57, 20558–20566 (2022). https://doi.org/10.1007/s10853-022-07915-0

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