DocumentCode :
3596577
Title :
Study of NBE emission enhancement of ZnO nanorods by changing the surface property of ultrathin Ag interlayer
Author :
Pal, Anil Kumar ; Mohan, D. Bharathi
Author_Institution :
Dept. of Phys., Pondicherry Univ., Pondicherry, India
fYear :
2014
Firstpage :
1
Lastpage :
4
Abstract :
Surface plasmon-enhanced near-band-edge (NBE) emission of ZnO nanorods (NRs) array was studied after growing on ultra-thin Ag film of mass thickness 1 nm. Prior to the growth, Ag films were annealed at 100 and 250 °C. Annealing at 100 °C lead to the formation of smaller size of Ag nanoparticles with higher particle number density facilitating the vertical growth of higher density of ZnO NRs with high aspect ratio. The observation of predominant (002) plane from X-ray diffraction confirmed the preferential growth of ZnO nanorods on Ag films. The shape, orientation, diameter and number particles density of ZnO NRs are investigated by scanning electron microscopy (SEM). The photoluminescence (PL) spectra reveals the enhancement of NBE emission of ZnO NRs due to the transfer of electrons from Ag to ZnO and the resonance coupling of surface plasmon energy with ZnO emission. The evolution of multiple, low intense side bands in visible rsgion are due to shallow trap levels. Moreover, the absence of broad defect level emission peak indicating the high optical quality of ZnO NRs which could be applicable for UV LEDs.
Keywords :
II-VI semiconductors; X-ray diffraction; annealing; nanorods; photoluminescence; scanning electron microscopy; silver; surface plasmons; zinc compounds; Ag; NBE emission enhancement; X-ray diffraction; ZnO; annealing; aspect ratio; electron transfer; mass thickness; nanoparticles; nanorods; particle number density; photoluminescence; scanning electron microscopy; shallow trap level; surface plasmon enhanced near band edge emission; surface property; temperature 100 degC; temperature 250 degC; ultrathin interlayer; Annealing; Arrays; II-VI semiconductor materials; Optical films; Surface morphology; Zinc oxide; Hydrothermal reaction; Surface Plasmon enhanced NBE emission; Thermal Evaporation; Ultra thin Ag films; ZnO;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Emerging Electronics (ICEE), 2014 IEEE 2nd International Conference on
Print_ISBN :
978-1-4673-6527-7
Type :
conf
DOI :
10.1109/ICEmElec.2014.7151155
Filename :
7151155
Link To Document :
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