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May 4, 2026Particle & Particle Systems Characterization4 citations

MXene Quantum Dots for Multifunctional Water Remediation: Bridging Photocatalysis, Electrocatalysis, and Fluorescent Sensing

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HFHusni FarahTATahani Abdul aziz jaffar AlsandookRMRekha M M

Key Points

  • The aim is to explore the functional roles of MXene quantum dots in water treatment and pollutant sensing.
  • Systematic analysis of MXene quantum dots in aquatic systems
  • Evaluation of photocatalytic and electrocatalytic applications
  • Assessment of fluorescence-based sensing for contaminants
  • MXene quantum dots enhance charge separation and photoluminescence for improved photocatalysis
  • Integration with Z-scheme architectures and hybrids increases reaction kinetics
  • Fluorescent sensing demonstrates selective electron transfer with metal ions and organic pollutants

Abstract

ABSTRACT Water pollution and the need for sustainable water treatment have become critical global challenges, demanding innovative material solutions. In this review, we systematically analyzed the functional roles of MXene quantum dots (MQDs) in aquatic systems, focusing on their applications in photocatalytic pollutant degradation, water splitting, and fluorescence‐based sensing of metal ions and organic contaminants. MQDs, with zero‐dimensional quantum confinement and abundant edge sites, facilitate efficient interfacial charge separation, rapid electron–hole dynamics, and size‐dependent photoluminescence. Integration of MQDs into Z‐scheme photocatalytic architectures, plasmonic hybrids, and edge‐enriched electrocatalysts enhances carrier utilization, broadens light absorption, and accelerates reaction kinetics. For sensing applications, the intrinsic redox activity of MQDs enables selective electron transfer with target analytes, producing “turn‐on” and “turn‐off” fluorescence responses suitable for complex aqueous environments. Hybridization with complementary quantum materials and conductive scaffolds further improves structural stability, prevents aggregation, and promotes efficient charge transport. Overall, this review highlights the versatility and tunability of MQDs, demonstrating their potential as multifunctional platforms for integrated energy conversion and sustainable water quality monitoring, and represents the first comprehensive review focused on this topic.

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Cite This Study

Farah et al. (2026) studied this question.

synapsesocial.com/papers/69f837003ed186a73998117dhttps://doi.org/10.1002/ppsc.70087
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