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Updated: May 20, 2026

Color Spot Test As a Presumptive Tool for the Rapid Detection of Synthetic Cathinones
Published on: February 5, 2018
Rapid and Specific Dual-Mode Recognition of Cathinone Derivatives Enabled by π-Conjugation-Tuned Multinoncovalent
Tianyu Wu1,2, Yudong Li1, Jiahao Dong1
1Xinjiang Key Laboratory of Trace Chemical Substances Sensing, Xinjiang Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Urumqi 830011, China.
Abstract:
Cathinone derivatives, a major class of new psychoactive substances, pose severe public health threats, because of their high toxicity, addictiveness, and concealed circulation, rendering their rapid on-site detection a critical challenge. Herein, a π-conjugation-tuning strategy based on the excited-state intramolecular proton transfer (ESIPT) mechanism is proposed to modulate multinoncovalent interactions via π-conjugation regulation and enable rapid, specific dual-mode detection of cathinone derivatives. The optimized carbazole-imidazole-based ESIPT probe IM-3 exhibits a distinct dual-mode response upon binding to methcathinone (MC): fluorescence quenching via a photoinduced electron transfer (PET) process that suppresses the ESIPT emission, and a color change from yellow to colorless, both triggered by synergistic multinoncovalent interactions (π-π stacking and N-H···N hydrogen bonding). This sensing system achieves ultrafast detection within 0.8 s, with low limits of detection (LOD): 4.7 μM (fluorescence mode) and 6.6 μM (colorimetric mode), excellent selectivity against 19 potential interferents, and robust stability and reliable performance across a wide range of pH and temperature conditions. The portable sensor, constructed through probe immobilization on a solid-liquid separation platform, provides accurate methcathinone in samples ranging from spiked matrices (sewage, blood, chocolate, beverage) to an authentic specimen. This work establishes a strategy for detecting cathinone derivatives (a representative class of low-nucleophilicity inert analytes) via π-conjugation-tuned multinoncovalent interactions, and provides a foundation for the next-generation dual-mode probes exploration and practical on-site security screening technologies advancing.
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