0
Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Nanoplastics Sign in to save

Trapping and detecting nanoplastics by MXene-derived oxide microrobots

Nature Communications 2022 220 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 55 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Martin Pumera Martina Ussia, Mario Urso, Mario Urso, Martin Pumera Mario Urso, Mario Urso, Mario Urso, Mario Urso, Mario Urso, Martin Pumera Martin Pumera Martin Pumera Martina Ussia, Martin Pumera Martina Ussia, Martin Pumera Martina Ussia, Martina Ussia, Mario Urso, Mario Urso, Mario Urso, Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Martin Pumera Filip Novotný, Filip Novotný, 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 MXene-derived oxide microrobots capable of autonomously capturing nanoplastics from water using light-powered movement and magnetic collection. The self-propelled microrobots trapped nanoplastics on their surfaces and enabled subsequent electrochemical detection, offering a proof-of-concept for on-site nanoplastic screening and water remediation.

Study Type Environmental

Nanoplastic pollution, the final product of plastic waste fragmentation in the environment, represents an increasing concern for the scientific community due to the easier diffusion and higher hazard associated with their small sizes. Therefore, there is a pressing demand for effective strategies to quantify and remove nanoplastics in wastewater. This work presents the "on-the-fly" capture of nanoplastics in the three-dimensional (3D) space by multifunctional MXene-derived oxide microrobots and their further detection. A thermal annealing process is used to convert TiCT MXene into photocatalytic multi-layered TiO, followed by the deposition of a Pt layer and the decoration with magnetic γ-FeO nanoparticles. The MXene-derived γ-FeO/Pt/TiO microrobots show negative photogravitaxis, resulting in a powerful fuel-free motion with six degrees of freedom under light irradiation. Owing to the unique combination of self-propulsion and programmable Zeta potential, the microrobots can quickly attract and trap nanoplastics on their surface, including the slits between multi-layer stacks, allowing their magnetic collection. Utilized as self-motile preconcentration platforms, they enable nanoplastics' electrochemical detection using low-cost and portable electrodes. This proof-of-concept study paves the way toward the "on-site" screening of nanoplastics in water and its successive remediation.

Sign in to start a discussion.

Share this paper