<p>Water-dispersible perovskite nanocrystals (PNCs) show promising applications in recognizing ionic and molecular species because of their excellent optical properties. However, lead halide PNCs have some limitations when they are used as probes for molecular species sensing in aqueous media. Here, we introduce trypsin (Try) as a bioligand for the synthesis of cesium lead chloride (CsPbCl<sub>3</sub>) PNCs with high water stability. The as-fabricated Try-CsPbCl<sub>3</sub> PNCs show λ<sub>Em/Ex</sub> at 433/370&#xa0;nm with a quantum yield of 17.26%. The fluorescence emission spectral characteristics of Try-CsPbCl<sub>3</sub> PNCs demonstrated that water-stable Try-CsPbCl<sub>3</sub> PNCs acted as a promising fluorescent probe for the detection of hydroxyl radical (<sup>•</sup>OH) via turn-off mechanism. The Try-CsPbCl<sub>3</sub> PNCs-based turn-off fluorescence approach displayed good selectivity for hydroxyl radical in water, showing a wider linear range (0.01–5&#xa0;µM) with a remarkable detection limit of 3.10&#xa0;nM for hydroxyl radical. The&#xa0;Try-CsPbCl<sub>3</sub> PNCs were demonstrated to be a facile probe for sensing <sup>•</sup>OH in water samples, which signifies that Try-CsPbCl<sub>3</sub> PNCs exhibited broad applications for hydroxyl radical sensing in real samples.</p> Graphical Abstract <p></p>

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Synthesis of trypsin-protected CsPbCl3 fluorescent nanocrystals for hydroxyl radical sensing

  • Suresh Kumar Kailasa,
  • Kartik Pankajbhai Makwana,
  • Madhura Pradeep Deshpande,
  • Yoojin Choi,
  • Ruth Stephanie,
  • Chan Yeong Park,
  • Tae Jung Park

摘要

Water-dispersible perovskite nanocrystals (PNCs) show promising applications in recognizing ionic and molecular species because of their excellent optical properties. However, lead halide PNCs have some limitations when they are used as probes for molecular species sensing in aqueous media. Here, we introduce trypsin (Try) as a bioligand for the synthesis of cesium lead chloride (CsPbCl3) PNCs with high water stability. The as-fabricated Try-CsPbCl3 PNCs show λEm/Ex at 433/370 nm with a quantum yield of 17.26%. The fluorescence emission spectral characteristics of Try-CsPbCl3 PNCs demonstrated that water-stable Try-CsPbCl3 PNCs acted as a promising fluorescent probe for the detection of hydroxyl radical (OH) via turn-off mechanism. The Try-CsPbCl3 PNCs-based turn-off fluorescence approach displayed good selectivity for hydroxyl radical in water, showing a wider linear range (0.01–5 µM) with a remarkable detection limit of 3.10 nM for hydroxyl radical. The Try-CsPbCl3 PNCs were demonstrated to be a facile probe for sensing OH in water samples, which signifies that Try-CsPbCl3 PNCs exhibited broad applications for hydroxyl radical sensing in real samples.

Graphical Abstract