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March 10, 2026ChemNanoMat0 citations

Molecular Engineering of Bracken Fern‐Derived Carbon via In Situ Benzimidazole Functionalization for Fluorescent Lead(II) Ion Sensing

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RKRakesh KumarSKSimran KapoorASAbhishek Soni

Key Points

  • To develop a carbon-based sensor derived from bracken fern for the selective detection of lead(II) ions in contaminated water.
  • Activated carbon was derived from bracken fern and functionalized with carboxylic acid groups.
  • In situ formation of benzimidazole moieties was achieved using o-phenylenediamine.
  • Characterization was performed using XPS, FTIR, XRD, and HRTEM to analyze the material's structure and properties.
  • Fluorescence properties were assessed to evaluate lead(II) ion sensing capabilities.
  • The developed BI@AC sensor showed high selectivity for lead(II) over other metal ions.
  • Detection limit of 2.8 µM was achieved within a linear range of 0.5–16.6 µM for Pb(II).
  • Significant fluorescence intensity decrease was observed with increasing Pb(II) concentrations.

Abstract

Bracken fern‐derived activated carbon is molecularly engineered for the selective detection of lead(II) ions in contaminated water. The carbon surface is functionalized with carboxylic acid groups and reacted with o ‐phenylenediamine to enable the in situ formation of benzimidazole moieties, yielding the material BI@AC. X‐ray photoelectron spectroscopy (XPS) and Fourier‐transform infrared (FTIR) analyses confirm the presence of benzimidazole, sulfonic and carboxylic groups, while X‐ray diffraction (XRD) reveals its highly amorphous nature. Field emission scanning electron microscope (FESEM) images show over‐layered porous graphitic sheets with some aggregated graphitic flakes. Moreover, the high‐resolution electron transmission electron microscopy (HRTEM) displays multistacked porous graphitic sheets with a corresponding selected area electron diffraction (SAED) pattern indicating amorphous nature. 1 H‐NMR verifies the consumption of o ‐phenylenediamine during benzimidazole formation. The fluorescence properties of BI@AC enable lead(II) ion sensing through a quenching mechanism, where increasing Pb(II) concentrations cause a significant decrease in fluorescence intensity. The material exhibits high selectivity towards Pb(II) over other metal ions and achieves a detection limit of 2.8 µM within a linear range of 0.5–16.6 µM. Adsorption confirms the binding of Pb(II) to the BI@AC through sulfonic acid and nitrogen atom of benzimidazole as the primary active sites, confirmed using FTIR analysis. This work highlights BI@AC as a sustainable, biomass‐derived sensor for efficient detection of toxic lead(II) ions in aqueous environments.

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Cite This Study

Kumar et al. (2026) studied this question.

synapsesocial.com/papers/69af954870916d39fea4ca06https://doi.org/10.1002/cnma.202500583
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