Zhang Chunyan, Luo Jianxin, Ou Lijuan, Lun Yinghui, Cai Songtao, Hu Bonian, Yu Guipeng, Pan Chunyue
College of Chemistry and Chemical Engineering, Hunan Provincial Key Laboratory of Efficient and Clean Utilization of Manganese Resources, Central South University, Changsha, 410083, P. R. China.
Department of Materials and Chemical Engineering, Key Laboratory of Functional Materials for Green Building, Hunan Institute of Technology, Hengyang, 421002, P. R. China.
Chemistry. 2018 Feb 26;24(12):3030-3037. doi: 10.1002/chem.201705560. Epub 2018 Jan 29.
We demonstrate an environmentally friendly one-step soap-free emulsion polymerization strategy to develop fluorescent carbazole-based copolymer monodisperse microspheres for highly sensitive and selective detection of Fe . The copolymer microspheres feature a stable spherical morphology with a narrow size distribution through regulating N-vinylcarbazole (NVCz) content (1.25-10.0 wt.%). Notably, the as-made microspheres exhibit a strong luminescence, tunable emission intensity and specific surface areas. Interestingly, the fluorescence of the copolymer microspheres can be selectively quenched by trace amounts of Fe due to the oxidation of carbazole, and the quenching fluorescence can be facilely recovered by reduction with NaBH . Its excellent sensing performance is shown in terms of high sensitivity (low limit of detection, 1.3 μm), excellent selectivity, and rapid response rate, due to the porous nature of the copolymer microspheres. These results illustrate the copolymer microspheres obtained by simple preparative procedure without using expensive or toxic raw materials would serve as a high performance sensor for highly selective and recyclable detection of Fe in aqueous medium.
我们展示了一种环境友好的一步无皂乳液聚合策略,以制备基于咔唑的荧光共聚物单分散微球,用于对铁进行高灵敏度和选择性检测。通过调节N-乙烯基咔唑(NVCz)含量(1.25 - 10.0 wt.%),共聚物微球具有稳定的球形形态且尺寸分布狭窄。值得注意的是,所制备的微球表现出强烈的发光、可调的发射强度和比表面积。有趣的是,由于咔唑的氧化,共聚物微球的荧光可被痕量的铁选择性猝灭,并且通过用硼氢化钠还原可轻松恢复猝灭的荧光。由于共聚物微球的多孔性质,其在高灵敏度(低检测限,1.3 μm)、优异的选择性和快速响应速率方面表现出出色的传感性能。这些结果表明,通过简单的制备过程且不使用昂贵或有毒原料获得的共聚物微球将作为一种高性能传感器,用于在水性介质中对铁进行高选择性和可回收检测。