Multifunctional Biotemplated Micromotors for In Situ Decontamination of Antibiotics and Heavy Metals in Soil and Groundwater

Author:

Cui Haohao1,Wang Ke1,Ma Enhui1,Wang Hong1

Affiliation:

1. School of Chemical Engineering and Technology, China University of Mining and Technology, Xuzhou 221116, China

Abstract

The ubiquitous pollution by antibiotics and heavy metal ions has posed great threats to human health and the ecological environment. Therefore, we developed a self-propelled tubular micromotor based on natural fibers as an active heterogeneous catalyst for antibiotic degradation and adsorbent for heavy metal ions in soil/water. The prepared micromotors can move in the presence of hydrogen peroxide (H2O2) through a bubble recoil mechanism. The MnO2 NPs and MnFe2O4 NPs loaded on the hollow fibers not only enabled self-driven motion and magnetic control but also served as activators of peroxymononsulfate (PMS) and H2O2 to produce active free radicals SO4•− and •OH. Benefiting from the self-propulsion and bubble generation, the micromotors can effectively overcome the disadvantage of low diffusivity of traditional heterogeneous catalysts, achieving the degradation of more than 90% TC in soil within 30 min. Meanwhile, due to the large specific surface area, abundant active sites, and strong negative zeta potential, the micromotors can effectively adsorb heavy metal ions in the water environment. In 120 min, self-propelled micromotors removed more than 94% of lead ions, an increase of 47% compared to static micromotors, illustrating the advantages of on-the-fly capture. The prepared micromotors with excellent catalytic performance and adsorption capacity can simultaneously degrade antibiotics and adsorb heavy metal ions. Moreover, the magnetic response enabled the micromotors to be effectively separated from the system after completion of the task, avoiding the problem of secondary pollution. Overall, the proposed micromotors provide a new approach to the utilization of natural materials in environmental applications.

Funder

Natural Science Foundation of Jiangsu Province

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

Reference40 articles.

1. Recent advances in surfactant-enhanced In-Situ Chemical Oxidation for the remediation of non-aqueous phase liquid contaminated soils and aquifers;Besha;Environ. Technol. Innov.,2018

2. Xu, Q., Wu, B., and Chai, X. (2022). In Situ Remediation Technology for Heavy Metal Contaminated Sediment: A Review. Int. J. Environ. Res. Public Health, 19.

3. Occurrence of veterinary antibiotics and progesterone in broiler manure and agricultural soil in Malaysia;Ho;Sci. Total Environ.,2014

4. Hamscher, G., Abu-Quare, A., Sczesny, S., Höper, H., and Nau, H. (2000, January 8–10). Determination of Tetracyclines and Tylosin in Soil and Water Samples from Agricultural Areas in Lower Saxony. Proceedings of the Euroresidue IV Conference, Veldhoven, The Netherlands.

5. Lignosulfonate-assisted hydrothermal synthesis of mesoporous MnFe2O4 and Fe3O4 for Pb(II) removal;Ma;Nano,2018

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