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PHOTOLUMINESCENCE OF POROUS SILICON-ZINC OXIDE HYBRID STRUCTURES

Abstract

Arrays of ZnO nanostructures, which are optically transparent in the visible range, were grown on the surface of porous silicon by electrochemical deposition. Photoluminescence excitation and emission spectra of the obtained hybrid structures were investigated in 220-450 and 400-800 nm regions, respectively. It is established that multicolor emission is formed by combining the luminescence bands of porous silicon and zinc oxide. The possibility of the photoluminescence spectra controlling by changing the excitation energy is demonstrated. It is revealed that thermal annealing has an effect on the luminescent properties of porous silicon/zinc oxide hybrid structures. Thermal processing at 500оС leads to the sharp decrease of long-wavelength luminescence associated with porous silicon and to the increase of short-wavelength luminescence intensity related to zinc oxide.

About the Authors

I. B. Olenych
Ivan Franko Lviv National University
Russian Federation


L. S. Monastyrskii
Ivan Franko Lviv National University
Russian Federation


A. P. Luchechko
Ivan Franko Lviv National University
Russian Federation


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Review

For citations:


Olenych I.B., Monastyrskii L.S., Luchechko A.P. PHOTOLUMINESCENCE OF POROUS SILICON-ZINC OXIDE HYBRID STRUCTURES. Zhurnal Prikladnoii Spektroskopii. 2017;84(1):79-83. (In Russ.)

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