Preparation, characterization and evaluation of water-soluble L-cysteine-capped-CdS nanoparticles as fluorescence probe for detection of Hg(II) in aqueous solution

被引:184
作者
Cai, ZX [1 ]
Yang, H [1 ]
Zhang, Y [1 ]
Yan, XP [1 ]
机构
[1] Nankai Univ, Res Ctr Analyt Sci, Coll Chem, Tianjin 300071, Peoples R China
关键词
nanoparticles; fluorescence probe; mercury;
D O I
10.1016/j.aca.2005.11.061
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Water-soluble L-cysteine-capped-CdS nanoparticles were prepared in aqueous solution at room temperature through a straightforward one-pot process by using safe and low-cost inorganic salts as precursors, and characterized by transmission electron microscopy, X-ray diffraction spectrometry, Fourier transform infrared spectrometry, spectrofluorometry and ultraviolet-visible spectrometry. The prepared L-cysteine-capped-CdS nanoparticles were evaluated as fluorescence probe for Hg(II) detection. The fluorescence quenching of the L-cysteine-capped-CdS nanoparticles depended on the concentration and pH of Hg(II) solution. Maximum fluorescence quenching was observed at pH 7.4 with the excitation and emission wavelengths of 360 nm and 495 nm, respectively. Quenching of its fluorescence due to Hg(II) at the 20 nmol l(-1) level was unaffected by the presence of 5 x 10(6)-fold excesses of Na(I) and K(I), 5 x 10(5)-fold excesses of Mg(II), 5 x 10(4)-fold excesses of Ca(II), 500-fold excesses of Al(III), 91-fold excesses of Mn(II), 23.5-fold excesses of Pb(II), 25-fold excesses of Fe(HI), 25-fold excesses of Ag(I), 8.5-fold excesses of Ni(II) and 5-fold excesses of Cu(II). Under optimal conditions, the quenched fluorescence intensity increased linearly with the concentration of Hg(H) ranging from 16 nmol l(-1) to 112 nmol l(-1). The limit of detection for Hg(II) was 2.4 nmol l(-1). The developed method was applied to the detection of trace Hg(II) in aqueous solutions. (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:234 / 239
页数:6
相关论文
共 27 条
[1]   Semiconductor nanocrystals as fluorescent biological labels [J].
Bruchez, M ;
Moronne, M ;
Gin, P ;
Weiss, S ;
Alivisatos, AP .
SCIENCE, 1998, 281 (5385) :2013-2016
[2]   Quantum dot bioconjugates for ultrasensitive nonisotopic detection [J].
Chan, WCW ;
Nie, SM .
SCIENCE, 1998, 281 (5385) :2016-2018
[3]   Luminescent CdS quantum dots as selective ion probes [J].
Chen, YF ;
Rosenzweig, Z .
ANALYTICAL CHEMISTRY, 2002, 74 (19) :5132-5138
[4]  
de la Riva BSV, 2000, ANAL CHIM ACTA, V419, P33
[5]   Studies on solution grown HgxCd1-xS thin films [J].
Deshmukh, LP ;
Garadkar, KM ;
Sutrave, DS .
MATERIALS CHEMISTRY AND PHYSICS, 1998, 55 (01) :30-35
[6]   Strongly photoluminescent CdTe nanocrystals by proper surface modification [J].
Gao, MY ;
Kirstein, S ;
Möhwald, H ;
Rogach, AL ;
Kornowski, A ;
Eychmüller, A ;
Weller, H .
JOURNAL OF PHYSICAL CHEMISTRY B, 1998, 102 (43) :8360-8363
[7]   Peptide-coated CdS quantum dots for the optical detection of copper(II) and silver(I) [J].
Gattás-Asfura, KA ;
Leblanc, RM .
CHEMICAL COMMUNICATIONS, 2003, (21) :2684-2685
[8]  
HASSELBARTH A, 1993, J PHYS CHEM-US, V97, P5333
[9]   Flotation-spectrophotometric determination of mercury in water samples using iodide and ferroin [J].
Hosseini, MS ;
Hashemi-Moghaddam, H .
ANALYTICAL SCIENCES, 2004, 20 (10) :1449-1452
[10]  
IANDOR MS, 1999, ANAL CHIM ACTA, V388, P19