Visible-light-induced self-propelled nanobots against nanoplastics

•A visible-light-sensitive nanobot composed of metal-organic framework.•Nanobots exhibit high nanoplastic removal capability and rate.•Nanobot-nanoplastic complexes self-agglomerate to stabilize metastable surface.•Nanoplastics increase 4,100-fold by forming nanobot-nanoplastic complexes. The accumu...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:Water research (Oxford) 2023-10, Vol.244, p.120543-120543, Article 120543
Hauptverfasser: Jung, Youngkyun, Yoon, Su-Jin, Byun, Jeehye, Jung, Kyung-Won, Choi, Jae-Woo
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:•A visible-light-sensitive nanobot composed of metal-organic framework.•Nanobots exhibit high nanoplastic removal capability and rate.•Nanobot-nanoplastic complexes self-agglomerate to stabilize metastable surface.•Nanoplastics increase 4,100-fold by forming nanobot-nanoplastic complexes. The accumulation of plastic debris in aquatic organisms has raised serious concerns about the potential health implications of their incorporation into the food chain. However, conventional water remediation techniques are incapable of effectively removing nanoplastics (NPs) smaller than 200 nm, which can have harmful effect on animal and human health. Herein, we demonstrate the “on-the-fly” capture of NPs through their enlargement (approximately 4,100 times) using self-propelled nanobots composed of a metal-organic framework. Under visible-light irradiation, the iron hexacyanoferrate (FeHCF) nanobot exhibits fuel-free motion by electrostatically adsorbing NPs. This strategy can contribute to reducing plastic pollution in the environment, which is a significant environmental challenge. Light-induced intervalence charge transfer in the FeHCF nanobot lattice induces bipolarity on the nanobot surface, leading to the binding of negatively charged NPs. The local electron density in the lattice then triggers self-propulsion, thereby inducing agglomeration of FeHCF@NP complexes to stabilize their metastable state. The FeHCF nanobot exhibits a maximum removal capacity of 3,060 mg∙g−1 and rate constant of 0.69 min−1, which are higher than those recorded for materials reported in the literature. [Display omitted]
ISSN:0043-1354
1879-2448
DOI:10.1016/j.watres.2023.120543