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February 12, 2026Luminescence0 citations

Rapid Synthesis of N, S‐Co‐Doped Fluorescent Carbon Dots From Eriocaulon buergerianum as a Selective Probe for Pd 2+ Detection

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GXGuoqiang XiangSXSiqi XiaYSYaming Sun

Key Points

  • The central aim is to synthesize N, S-co-doped carbon dots and evaluate their efficacy in detecting Pd2+ ions.
  • Synthesis of N, S-co-doped carbon dots using Eriocaulon buergerianum as a carbon source.
  • Utilization of ethylenediamine as a surface modifier.
  • Characterization of N, S-CDs for size, fluorescence intensity, and selectivity towards Pd2+.
  • Assessment of the detection limit and quenching mechanism of fluorescence response to Pd2+.
  • Testing detection performance in various water sample types.
  • N, S-co-doped carbon dots showed a high fluorescence quantum yield of 36.6%.
  • Fluorescence intensity decreased significantly with increasing Pd2+ concentration, with a detection limit of 5.51 ng mL−1.
  • The relative standard deviation of fluorescence responses was 1.56%, indicating high precision.
  • The study confirmed effective detection of Pd2+ in lake, river, and synthetic water samples, with satisfactory recovery rates.

Abstract

ABSTRACT In this study, N, S‐co‐doped carbon dots (N, S‐CDs) with high fluorescence quantum yield (36.6%) were successfully prepared by H 2 O 2 mediated self‐exothermic reaction under alkaline conditions using Eriocaulon buergerianum as a carbon source and ethylenediamine (EDA) as a surface modifier. The synthesized N, S‐CDs have a uniform size distribution (1–4.5 nm) and exhibit double emission peaks (389 and 410 nm) under 310 nm excitation. It was found that the N, S‐CDs exhibited highly selective and sensitive fluorescence response to Pd 2+ in aqueous solution, and the fluorescence intensity decreased significantly with the increase of Pd 2+ concentration (0.05–3.5 μg mL −1 ). The detection limit was as low as 5.51 ng mL −1 , and the relative standard deviation (RSD) was 1.56%. The study of quenching mechanism showed that the mixed static‐dynamic quenching interaction between Pd 2+ and N, S‐CDs resulted in fluorescence quenching. In addition, the probe showed good detection performance in lake water, river water, and synthetic water samples, and the recovery rate met the analysis requirements. This study not only provides a green and economical fluorescence sensing strategy for the efficient detection of Pd 2+ but also opens up a new way for the application of natural plant resources in the preparation of functional nanomaterials.

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Cite This Study

Xiang et al. (2026) studied this question.

synapsesocial.com/papers/698d6e2a5be6419ac0d53ad8https://doi.org/10.1002/bio.70444
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