Fabrication and luminescence of ZnS:Mn2+ nanoflowers

被引:23
作者
Chen, W
Bovin, JO
Wang, SP
Joly, AG
Wang, YQ
Sherwood, PMA
机构
[1] Nomadics Inc, Stillwater, OK 74074 USA
[2] Lund Univ, Ctr Chem, SE-22100 Lund, Sweden
[3] Pacific NW Natl Lab, Richland, WA 99352 USA
[4] Oklahoma State Univ, Dept Chem, Stillwater, OK 74078 USA
关键词
nanoflowers; doped nanoparticles; semiconductors; luminescence; fractal structures; ZnS : Mn2+; fabrication; surfaces; defects;
D O I
10.1166/jnn.2005.302
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Visually striking nanoflowers composed of ZnS:Mn2+ nanoparticles are prepared and characterized. The configurations of these fractal structures are very sensitive to both the pH values of the particle solutions from which they are precipitated and the substrates on which they are deposited. At pH 2.2, the fractal structures resemble trees without leaves; at pH 7.7, they are tree-like with four arms and at pH 11.0 they resemble trees with six arms. High resolution transmission microscopy reveals that the nanoflowers are composed of ZnS:Mn2+ nanoparticles of 2-5 nm in size. X-ray photoelectron spectral data indicate that the sample compositions of nitrogen, chlorine, and sulfur vary gradually with pH values of the solutions. These changes may have an impact on both the fractal configuration and the luminescence properties. The emission spectra of the particle solutions at pH values of 2.2 and 11.0 are similar with the emission maximum at 475 nm. As the pH value approaches 7.7, the emission spectral maximum shifts to longer wavelengths. At a pH value of 7.7, the emission peak wavelength is the reddest, 520 nm. The emission peak of the nanoflowers at a pH value of 9.3 is 510 nm, while the emission spectrum of the nanoflowers at 5.2 has two peaks at 500 nm and 440 nm, respectively. These blue-green emissions are attributed to defects and are the dominant luminescence from the nanoflowers. The emission from Mn2+ dopant is only observed in the delayed spectra of the fractal solid samples.
引用
收藏
页码:1309 / 1322
页数:14
相关论文
共 35 条
[1]  
Baish JW, 2000, CANCER RES, V60, P3683
[2]   Response of bacterial colonies to imposed anisotropy [J].
BenJacob, E ;
Shochet, O ;
Tenenbaum, A ;
Cohen, I ;
Czirok, A ;
Vicsek, T .
PHYSICAL REVIEW E, 1996, 53 (02) :1835-1843
[3]   GENERIC MODELING OF COOPERATIVE GROWTH-PATTERNS IN BACTERIAL COLONIES [J].
BENJACOB, E ;
SCHOCHET, O ;
TENENBAUM, A ;
COHEN, I ;
CZIROK, A ;
VICSEK, T .
NATURE, 1994, 368 (6466) :46-49
[4]   Diffusion-limited aggregation: A relationship between surface thermodynamics and crystal morphology [J].
Bogoyavlenskiy, VA ;
Chernova, NA .
PHYSICAL REVIEW E, 2000, 61 (02) :1629-1633
[5]   Structure formation and the morphology diagram of possible structures in two-dimensional diffusional growth [J].
Brener, E ;
MullerKrumbhaar, H ;
Temkin, D .
PHYSICAL REVIEW E, 1996, 54 (03) :2714-2722
[6]   Voltage tunable electroluminescence of CdTe nanoparticle light-emitting diodes [J].
Chen, W ;
Grouquist, D ;
Roark, J .
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2002, 2 (01) :47-53
[7]   Crystal field, phonon coupling and emission shift of Mn2+ in ZnS:Mn nanoparticles [J].
Chen, W ;
Sammynaiken, R ;
Huang, YN ;
Malm, JO ;
Wallenberg, R ;
Bovin, JO ;
Zwiller, V ;
Kotov, NA .
JOURNAL OF APPLIED PHYSICS, 2001, 89 (02) :1120-1129
[8]  
CHEN W, 2004, ENCY NANOSCIENCE NAN, P689
[9]   METHOD TO REDUCE HYDROCARBON CONTAMINATION OF SAMPLES IN X-RAY PHOTOELECTRON-SPECTROSCOPY [J].
CLARK, DT ;
THOMAS, HR ;
DILKS, A ;
SHUTTLEWORTH, D .
JOURNAL OF ELECTRON SPECTROSCOPY AND RELATED PHENOMENA, 1977, 10 (04) :455-460
[10]  
Cross SS, 1997, J PATHOL, V182, P1