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April 24, 2026Molecules0 citationsOpen Access

Organic–Inorganic Triethylenediamine Cu(I)-Iodides as Reusable Photoluminescent Sensors for Waterborne Pollutants

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VMVictoria MartínGBGiulia BardelliJDJulián Ávila Durán

Key Points

  • The study aims to develop reusable photoluminescent sensors using Cu(I) iodides to detect waterborne pollutants.
  • Synthesis of Cu(I)–I triethylenediamine derivatives with controlled particle size through ultrasound sonication.
  • Integration of stable suspensions into polymeric matrices via 3D printing or drop-casting.
  • Evaluation of sensors' performance for detecting Fe3+ and tetracycline in aqueous media.
  • Sensors achieved nanomolar detection limits of 1.33–1.58 nM for Fe3+, surpassing regulatory thresholds.
  • [Cu3I5(bz-ted)2] enables detection of tetracycline at 0.038 nM in river water.
  • Composites demonstrate stable sensing performance over multiple reuse cycles.

Abstract

Luminescent organic–inorganic Cu(I) halide hybrid molecular crystals exhibit remarkable structural diversity and photophysical properties, but their application in aqueous environments is often limited by insufficient stability. Herein, we report portable and reusable photoluminescent sensors based on Cu(I)–I triethylenediamine derivatives Cu4I6(pr-ted)2 and Cu3I5(bz-ted)2 (pr-ted = 1-propyl-1,4-diazabicyclo2.2.2octan-1-ium; bz-ted = 1-benzyl-1,4-diazabicyclo2.2.2octan-1-ium). Their submicrometric particles exhibit intense UV-excited emissions and high photoluminescence quantum yields but limited water stability. To address this limitation, ultrasound sonication was employed to control particle size and produce stable suspensions that can be incorporated into polymeric matrices via 3D printing with photocurable resins or polylactic acid (PLA) films by drop-casting, yielding mechanically robust composites that retain their structural and optical properties. The devices used act as selective turn-off luminescent sensors for Fe3+ in aqueous media, with nanomolar detection limits (1.33–1.58 nM) below regulatory thresholds for drinking water. Moreover, Cu3I5(bz-ted)2 enables tetracycline detection in river water with a limit of detection of 0.038 nM. Mechanistic studies indicate that reversible photoinduced electron transfer is the primary quenching pathway, while composites maintain sensing performance over multiple reuse cycles.

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Cite This Study

Martín et al. (2026) studied this question.

synapsesocial.com/papers/69eb0ac4553a5433e34b4c85https://doi.org/10.3390/molecules31091384
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