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May 31, 2026Analysis & Sensing0 citations

Sensitive Detection of Glyphosate Based on Luminescence Resonance Energy Transfer Between Upconversion Nanoparticles and Naphthalimide Dye

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ECEsteban Uriel Colorado‐GarcíaCGCésar Fernando Azael Gómez‐DuránCACesar Manuel Del Angel‐Olarte

Key Points

  • This work aims to develop a sensitive and reliable sensor for detecting glyphosate using luminescence resonance energy transfer (LRET).
  • Developed a fluorescence-based glyphosate sensor utilizing upconversion nanoparticles as donors and naphthalimide dye as the acceptor.
  • Implemented a displacement assay to monitor glyphosate binding through disruption of energy transfer.
  • Achieved detection limits of 493.14 nM and quantification limits of 1494.36 nM.
  • Established a linear response for glyphosate detection over a wide concentration range.
  • Demonstrated high sensitivity and cost-effectiveness in the glyphosate sensor.
  • Showed potential for on-site environmental application.

Abstract

Glyphosate (Gly) is one of the most widely used herbicides worldwide due to its cost‐effectiveness in weed control and its indirect effects on crop yields. However, in 2015, the International Agency for Research on Cancer classified Gly as “probably carcinogenic to humans,” prompting restrictions in several countries, while its large‐scale use persists in developing regions. This scenario highlights the urgent need for sensitive and reliable methods for Gly monitoring. In this work, we report a fluorescence‐based Gly sensor that operates via luminescence resonance energy transfer (LRET). The system uses Gd 2 O 3 :Er upconversion nanoparticles (UCNPs) as donors and a naphthalimide‐derived dye (NATP) as the energy acceptor. The adsorption of NATP onto UCNPs enables efficient LRET, which is selectively disrupted upon Gly binding, resulting in fluorescence recovery of the nanoparticles. This displacement assay was successfully applied to Gly detection over a wide concentration range, yielding a linear response with a detection limit (LOD) of 493.14 nM and a quantification limit (LOQ) of 1494.36 nM. These findings establish a novel LRET‐based sensing platform for Gly, offering high sensitivity, cost‐effectiveness, and potential applicability in portable sensors for on‐site environmental monitoring.

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Cite This Study

Colorado‐García et al. (2026) studied this question.

synapsesocial.com/papers/6a1bd0845783ba022b6fc498https://doi.org/10.1002/anse.70094
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