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Spinnable hydrogel marbles: A dynamic miniature molecule concentrator for efficient water decontamination and colorimetric detection.

Authors :
Pereira, Veronica
Ang, Zhi Zhong
Chong, Carice
Li, Haitao
Lee, Hiang Kwee
Source :
Chemical Engineering Journal. Jan2024, Vol. 480, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

• Efficient molecule enrichment across a dynamic water-water interface. • Robust hydrogel polymeric backbone allows for efficient pollutant arrestment. • Magnetically actuated spinning concentrates pollutants rapidly by ≥300-fold. • Ultrasensitive colorimetric monitoring for reliable water chemistry analysis. • Energy and time-efficient while preserving innate chemical properties of pollutants. The efficient accumulation of molecules from dilute solutions is crucial for facilitating pollutant decontamination, trace analyte detection, and chemical reactions. However, current methods to concentrate molecules are limited by prolonged processing times, high energy consumption, and a narrow range of applicable molecules. Herein, we introduce a magnetic-responsive spinnable hydrogel marble (SHM) as a miniature molecule concentrator for efficient water decontamination and sensing applications. The spinning motion of SHM creates a dynamic water-water interface within an aqueous environment, generating a vortex-like hydrodynamic flow that actively delivers molecules into the embedded hydrogel microdroplet. Notably, the SHM achieves a remarkable ∼95 % decontamination efficiency for cationic organic water pollutants in just 15 min while simultaneously concentrating molecules within SHM by ≥300-fold, a feat that remains challenging with conventional non-dynamic liquid interface. Moreover, the SHM also doubles as a versatile concentrator-cum-detection platform for ultrasensitive colorimetric sensing of organic pollutants in real wastewater at >99 % accuracy, thereby allowing the on-site readout of water chemistry using naked eyes or smartphone for prompt intervention. By enabling the efficient and swift concentration of molecules in an energy-efficient manner, our unique design effectively addresses the drawbacks of traditional approaches and creates enormous opportunities for diverse analytical, environmental, and chemical applications. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13858947
Volume :
480
Database :
Academic Search Index
Journal :
Chemical Engineering Journal
Publication Type :
Academic Journal
Accession number :
174874445
Full Text :
https://doi.org/10.1016/j.cej.2023.148132