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Carboxymethyl micro-nanocellulose enhanced cellulose-based fluorescent membranes for the selective detection of Cu2+ and Hg2+

  • Jingjing Han
  • , Hongying Hao*
  • , Mengyao Li
  • , Manyi Yin
  • , Shaoyi Lyu
  • , Ziqiang Shao
  • *Corresponding author for this work
  • University of Science and Technology Beijing
  • Shenzhen Zhili Middle School
  • Chinese Academy of Forestry
  • Beijing Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

A CA-CMCNF-CDs fluorescent sensing membrane was developed by incorporating carboxymethylated micro/nanocellulose (CMCNF) and carbon dots into a cellulose acetate (CA) matrix for the selective detection of Cu2+ and Hg2+ in water. The incorporation of an appropriate amount of CMCNF significantly improved the fluorescence intensity, mechanical properties, and sensing performance of the membrane by generating an interconnected porous structure that facilitated metal-ion transport. The proposed sensing membrane exhibited a wide linear detection range (0–10 mg/L), low detection limits of 0.040 mg/L for Cu2+ and 0.034 mg/L for Hg2+, together with excellent selectivity and anti-interference capability. Mechanistic studies revealed that oxygen- and nitrogen-containing functional groups served as the primary coordination sites for Cu2+ and Hg2+. Fluorescence quenching was dominated by static quenching through the formation of ground-state coordination complexes, whereas Hg2+ additionally involved dynamic quenching, as confirmed by fluorescence lifetime analysis. The sensing membrane exhibited satisfactory accuracy and precision for the determination of Cu2+ and Hg2+ in real water samples, demonstrating its potential as a rapid and reliable fluorescent sensing platform for environmental heavy metal monitoring.

Original languageEnglish
Article number128439
JournalSpectrochimica Acta - Part A: Molecular and Biomolecular Spectroscopy
Volume363
DOIs
Publication statusPublished - 15 Dec 2026
Externally publishedYes

Keywords

  • Carbon dots
  • Carboxymethylated micro-nanocellulose
  • Cellulose acetate porous membrane
  • Metal ions
  • Rapidly detection

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