Jianqing Zhao
South China University of Technology
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Featured researches published by Jianqing Zhao.
Nanotechnology | 2009
Jian Chen; Fang Zeng; Shuizhu Wu; Junhua Su; Jianqing Zhao; Zhen Tong
A facile approach was developed to produce a dye-doped core-shell nanoparticle chemosensor for detecting Cu(2+) in aqueous media. The core-shell nanoparticle sensor was prepared by a one-step emulsifier-free polymerization, followed by the doping of the fluorescent dye Nile red (9-diethylamino- 5H-benzo[alpha] phenoxazine-5-one, NR) into the particles. For the nanoparticles, the hydrophilic polyethyleneimine (PEI) chain segments serve as the shell and the hydrophobic polymethyl methacrylate (PMMA) constitutes the core of the nanoparticles. The non-toxic and biocompatible PEI chain segments on the nanoparticle surface exhibit a high affinity for Cu(2+) ions in aqueous media, and the quenching of the NR fluorescence is observed upon binding of Cu(2+) ions. This makes the core-shell nanoparticle system a water-dispersible chemosensor for Cu(2+) ion detection. The quenching of fluorescence arises through intraparticle energy transfer (FRET) from the dye in the hydrophobic PMMA core to the Cu(2+)/PEI complexes on the nanoparticle surface. The energy transfer efficiency for PEI/PMMA particles with different diameters was determined, and it is found that the smaller nanoparticle sample exhibits higher quenching efficiency, and the limit for Cu(2+) detection is 1 microM for a nanoparticle sample with a diameter of approximately 30 nm. The response of the fluorescent nanoparticle towards different metal ions was investigated and the nanoparticle chemosensor displays high selectivity and antidisturbance for the Cu(2+) ion among the metal ions examined (Na(+), K(+), Mg(2+), Ca(2+), Zn(2+), Hg(2+), Mn(2+), Fe(2+), Ni(2+), Co(2+) and Pb(2+)). This emulsifier-free, biocompatible and sensitive fluorescent nanoparticle sensor may find applications in cupric ion detection in the biological and environmental areas.
European Polymer Journal | 2006
Liang Guo; Shuizhu Wu; Fang Zeng; Jianqing Zhao
Nanotechnology | 2010
Boling Ma; Shuizhu Wu; Fang Zeng; Yulan Luo; Jianqing Zhao; Zhen Tong
Chemical Communications | 2008
Jian Chen; Fang Zeng; Shuizhu Wu; Jianqing Zhao; Qiming Chen; Zhen Tong
Macromolecular Rapid Communications | 2006
Shuizhu Wu; Yanfeng Wu; Fang Zeng; Zhen Tong; Jianqing Zhao
Crystal Growth & Design | 2008
Shuizhu Wu; Boling Ma; Fang Zeng; Jian Chen; Jianqing Zhao; Zhen Tong; Yulan Luo
Reactive & Functional Polymers | 2006
Hongping Zhu; Shuizhu Wu; Fang Zeng; Shenglan Yao; Jianqing Zhao; Weilong She; Duanbin Luo; Weigang Feng
Archive | 2008
Shuizhu Wu; Jiarong Lu; Jianqing Zhao; Fang Zeng
European Polymer Journal | 2008
Rong Li; Boling Ma; Shuizhu Wu; Jianqing Zhao; Xiuming Lei
Applied Surface Science | 2009
Xiuming Lei; Shuizhu Wu; Jianqing Zhao; Rong Li; Fang Zeng