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Pick up and dispose of pollutants from water via temperature-responsive micellar copolymers on magnetite nanorobots

Nature Communications 2022 87 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 50 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Martin Pumera Martin Pumera Jayraj V. Vaghasiya, Martin Pumera Carmen C. Mayorga‐Martinez, Carmen C. Mayorga‐Martinez, Carmen C. Mayorga‐Martinez, Carmen C. Mayorga‐Martinez, Martin Pumera Martin Pumera Carmen C. Mayorga‐Martinez, Martin Pumera Martin Pumera Stanislava Matějková, Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera

Summary

Researchers developed temperature-responsive magnetic nanorobots that can actively swim through water, adsorb toxic pollutants like arsenic and herbicides onto their surface, and then release those pollutants for disposal simply by cooling the water. This nano-scale water treatment approach showed excellent removal efficiency and could be reused multiple times, offering a promising new tool for targeting specific contaminants in polluted water.

Nano/micromotor technology is evolving as an effective method for water treatment applications in comparison to existing static mechanisms. The dynamic nature of the nano/micromotor particles enable faster mass transport and a uniform mixing ensuring an improved pollutant degradation and removal. Here we develop thermosensitive magnetic nanorobots (TM nanorobots) consisting of a pluronic tri-block copolymer (PTBC) that functions as hands for pollutant removal. These TM nanorobots are incorporated with iron oxide (Fe<sub>3</sub>O<sub>4</sub>) nanoparticles as an active material to enable magnetic propulsion. The pickup and disposal of toxic pollutants are monitored by intermicellar agglomeration and separation of PTBC at different temperatures. The as-prepared TM nanorobots show excellent arsenic and atrazine removal efficiency. Furthermore, the adsorbed toxic contaminants on the TM nanorobots can be disposed by a simple cooling process and exhibit good recovery retention after multiple reuse cycles. This combination of temperature sensitive aggregation/separation coupled with magnetic propulsion opens a plethora of opportunities in the applicability of nanorobots in water treatment and targeted pollutant removal approaches.

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