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May 6, 2026RSC Advances8 citationsOpen Access

Mechanistic and signal engineering of nitrogen-doped MXene quantum dots in electrochemical and electrochemiluminescence sensing platforms

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EDEnas DaoudEMEntidhar Jasim MohammedRRRoopashree R

Key Points

  • To review the mechanistic principles and signal engineering strategies of nitrogen-doped MXene quantum dots in electrochemical and electrochemiluminescence sensing.
  • Analyzed electronic structure modulation and charge-transfer pathways
  • Discussed radical-mediated ECL processes and surface-state regulation
  • Reviewed advanced signal modulation techniques and recent applications
  • Established structure-property-signal relationships that influence sensing performance
  • Highlighted potential of ratiometric and multichannel detection methods
  • Evaluated applications in biosensing and environmental analysis for improved analytical performance

Abstract

Nitrogen-doped MXene quantum dots (N-MQDs) have recently attracted considerable attention as low-dimensional nanomaterials for electrochemical and electrochemiluminescence (ECL) sensing owing to their high electrical conductivity, tunable electronic structure, abundant surface-active sites, and pronounced quantum confinement effects. Nitrogen incorporation enables effective regulation of charge density, energy-level alignment, and radical stabilization, which collectively control electron transfer kinetics and luminescence efficiency. Despite growing interest, a unified mechanistic understanding linking nitrogen doping, signal modulation, and sensing performance remains limited. This review systematically examines the mechanistic principles and signal engineering strategies of N-MQDs in electrochemical and ECL sensing platforms. Key aspects, including electronic structure modulation, charge-transfer pathways, radical-mediated ECL processes, surface-state regulation, and quantum confinement effects, are discussed to establish structure-property-signal relationships. Advanced signal modulation approaches, such as excitation-dependent emission, ratiometric and multichannel detection, temporal and kinetic control, environmental responsiveness, and coreactant-driven amplification, are comprehensively reviewed. Recent applications in biosensing and environmental analysis are also evaluated with emphasis on analytical performance and sensor architectures. This review provides a comprehensive overview of recent advances in N-MQDs for ECL sensing, highlighting synthesis strategies, electronic properties, sensing mechanisms, and emerging applications.

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Cite This Study

Daoud et al. (2026) studied this question.

synapsesocial.com/papers/69fada7f03f892aec9b1e3f7https://doi.org/10.1039/d6ra01114d
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