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Updated: May 10, 2025

Dynamic Electrochemical Measurement of Chloride Ions
Published on: February 5, 2016
Triple-Standard Hypochlorite Quantitative Array Enabled by Precise Stokes Shift Modulation in D-π-A Chemodosimeters.
Mubalake Rehemaitijiang1, Gaosheng Li2, Rongchao Zhu2
1College of Chemistry and Chemical Engineering, Xinjiang Normal University, Urumqi 830054, China.
Researchers developed novel D-π-A fluorescent chemodosimeters for enhanced optical sensing. These sensors show improved visualization and sensitive detection of hypochlorite (ClO-) with rapid response and high selectivity.
Area of Science:
- Chemical sensing
- Fluorescent probes
- Materials science
Background:
- Designing chemodosimeters with large Stokes shifts is crucial for improving optical sensing signal visualization.
- D-π-A (Donor-π-Acceptor) structures are key components in developing advanced fluorescent chemodosimeters.
Purpose of the Study:
- To synthesize and investigate three D-π-A fluorescent chemodosimeters with varying electron-releasing strengths.
- To explore the relationship between electron-releasing modulation, Stokes shift, and sensing mechanisms.
- To evaluate the chemodosimeters' performance for detecting hypochlorite (ClO⁻).
Main Methods:
- Synthesis of three D-π-A fluorescent chemodosimeters using 2-(3-cyano-4,5,5-trimethylfuran-2(5H)-ylidene) malononitrile (TCF) as the electron-withdrawing group.
- Modulation of electron-releasing strength to tune electrophilicity and Stokes shift.
- Evaluation of sensing performance, including limit of detection (LOD), response time, and selectivity for ClO⁻ detection.
- Validation using a portable quantitative array detection platform.
Main Results:
- Decreasing electron release increased electrophilicity by 1.449 kcal/mol and improved Stokes shift to 201 nm.
- Sensing modes transitioned from fluorescence quenching to ratiometric fluorescence and then to fluorescence-on.
- Achieved low LODs for ClO⁻ (37.0, 5.1, and 1.0 nM) with rapid response (<5 s) and high selectivity.
- Demonstrated practical quantitative detection of ClO⁻ using a portable array platform.
Conclusions:
- The developed D-π-A chemodosimeters offer sensitive and visualized detection of ClO⁻.
- The design and modulation strategy provide a new approach for identifying oxidants and hazardous chemicals.
- These findings advance the field of optical sensing and chemodosimeter design.
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