Trap elimination and reduction of size dispersion due to aging in CdSxSe1-x quantum dots

被引:12
作者
Verma, Abhishek
Nagpal, Swati
Pandey, Praveen K.
Bhatnagar, P. K.
Mathur, P. C.
机构
[1] Univ Delhi, Dept Elect Sci, New Delhi 110021, India
[2] Univ Delhi, Rajdhani Coll, Dept Phys & Elect, New Delhi 110015, India
关键词
II-VI semiconductors; quantum dots (QDs); quantum confinement; semiconductor doped glasses (SDGs); size-dispersion; shallow-traps;
D O I
10.1007/s11051-007-9214-x
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Quantum Dots of CdS (x) Se1-x embedded in borosilicate glass matrix have been grown using Double-Step annealing method. Optical characterization of the quantum dots has been done through the combinative analysis of optical absorption and photoluminescence spectroscopy at room temperature. Decreasing trend of photoluminescence intensity with aging has been observed and is attributed to trap elimination. The changes in particle size, size distribution, number of quantum dots, volume fraction, trap related phenomenon and Gibbs free energy of quantum dots, has been explained on the basis of the diffusion-controlled growth process, which continues with passage of time. For a typical case, it was found that after 24 months of aging, the average radii increased from 3.05 to 3.12 nm with the increase in number of quantum dots by 190% and the size-dispersion decreased from 10.8% to 9.9%. For this sample, the initial size range of the quantum dots was 2.85 to 3.18 nm. After that no significant change was found in these parameters for the next 12 months. This shows that the system attains almost a stable nature after 24 months of aging. It was also observed that the size-dispersion in quantum dots reduces with the increase in annealing duration, but at the cost of quantum confinement effect. Therefore, a trade off optimization has to be done between the size-dispersion and the quantum confinement.
引用
收藏
页码:1125 / 1131
页数:7
相关论文
共 29 条
[1]   Hidden symmetries in the energy levels of excitonic 'artificial atoms' [J].
Bayer, M ;
Stern, O ;
Hawrylak, P ;
Fafard, S ;
Forchel, A .
NATURE, 2000, 405 (6789) :923-926
[2]  
EFROS AL, 1982, SOV PHYS SEMICOND+, V16, P772
[3]  
Ekimov A. I., 1980, Fiz. Khim. Stekla, V6, P511
[4]   VERY LARGE OPTICAL NONLINEARITY OF SEMICONDUCTOR MICROCRYSTALLITES [J].
HANAMURA, E .
PHYSICAL REVIEW B, 1988, 37 (03) :1273-1279
[5]   OPTICAL AND ELECTROOPTICAL PROPERTIES OF II-VI-QUANTUM DOTS [J].
HENNEBERGER, F ;
PULS, J ;
SPIEGELBERG, C ;
SCHULZGEN, A ;
ROSSMAN, H ;
JUNGNICKEL, V ;
EKIMOV, AI .
SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 1991, 6 (9A) :A41-A50
[6]  
HENNEBERGER F, 1993, OPTICS SEMICONDUCTOR
[7]  
KADONO K, 1991, P INT C SCI TECHN NE, P223
[8]   Quenching treatment for improvement of nonlinear optical response time in high-χ(3) CuCl-doped glasses [J].
Kuroiwa, Y ;
Sugimoto, N ;
Kondo, Y ;
Manabe, T ;
Ito, S ;
Nakmura, A .
OPTICS COMMUNICATIONS, 1999, 170 (4-6) :285-289
[9]   Exciton states and optical spectra in CdSe nanocrystallite quantum dots [J].
Li, JB ;
Xia, JB .
PHYSICAL REVIEW B, 2000, 61 (23) :15880-15886
[10]   TRAP ELIMINATION IN CDTE QUANTUM DOTS IN GLASSES [J].
LIU, Y ;
REYNOSO, VCS ;
BARBOSA, LC ;
ROJAS, RFC ;
FRAGNITO, HL ;
CESAR, CL ;
ALVES, OL .
JOURNAL OF MATERIALS SCIENCE LETTERS, 1995, 14 (09) :635-639