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September 10, 2025Chemosensors1 citationsOpen Access

Efficient and Selective Multiple Ion Chemosensor by Novel Near-Infrared Sensitive Symmetrical Squaraine Dye Probe

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STSushma ThapaKSKshitij RB SinghSPShyam S. Pandey

Key Points

  • SQ-68 allows selective detection of Cu2+ and Ag+ ions with NIR sensitivity in varying solvent conditions.
  • The sensor achieves detection limits of 0.09 μM for Cu2+ and 0.38 μM for Ag+, confirming its high sensitivity.
  • Spectroscopic studies show a 1:1 binding stoichiometry for both ions, accompanied by significant visible color changes.
  • Real water samples demonstrate recovery rates of 73-95% for Cu2+ and 59-99% for Ag+, validating practical application.

Abstract

A novel near-infrared (NIR) squaraine-based chemosensor, SQ-68, has been designed and synthesized for the sensitive and selective detection of Cu2+ and Ag+ ions, offering a compact solution for multi-analyte sensing. SQ-68 demonstrates high selectivity, with its performance influenced by the solvent environment: It selectively detects Cu2+ in acetonitrile and Ag+ in an ethanol–water mixture. Upon binding with either ion, SQ-68 undergoes significant absorption changes in the NIR region, accompanied by visible color changes, enabling naked-eye detection. Spectroscopic studies confirm a 1:1 binding stoichiometry with both Cu2+ and Ag+, accompanied by hypochromism. The detection limits are 0.09 μM for Cu2+ and 0.38 μM for Ag+, supporting highly sensitive quantification. The sensor’s practical applicability was validated in real water samples (sea, lake, and tap water), with recovery rates ranging from 73–95% for Cu2+ to 59–99% for Ag+. These results establish SQ-68 as a reliable and efficient chemosensor for environmental monitoring and water quality assessment. Its dual-analyte capability, solvent-tunable selectivity, and visual detection features make it a promising tool for rapid and accurate detection of heavy metal ions in diverse aqueous environments.

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Cite This Study

Thapa et al. (2025) studied this question.

synapsesocial.com/papers/68c1b19354b1d3bfb60e8d73https://doi.org/10.3390/chemosensors13080288
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