Secondary Emission From Synthetic Opal Infiltrated by Colloidal Gold and Glycine

Authors

  • G.I. Dovbeshko Institute of Physics, Nat. Acad. of Sci. of Ukraine
  • O.M. Fesenko Institute of Physics, Nat. Acad. of Sci. of Ukraine
  • V.V. Boyko Institute of Physics, Nat. Acad. of Sci. of Ukraine
  • V.R. Romanyuk V.E. Lashkaryov Institute of Semiconductor Physics, Nat. Acad. of Sci. of Ukraine
  • V.S. Gorelik P.N. Lebedev Physical Institute
  • V.N. Moiseyenko Oles Honchar National University of Dnipropetrovsk
  • V.B. Sobolev Technical Center of Nat. Acad. of Sci. of Ukraine
  • V.V. Shvalagin L.V. Pysarzhevsky Institute of Physical Chemistry, Nat. Acad. of Sci. of Ukraine

DOI:

https://doi.org/10.15407/ujpe57.2.154

Keywords:

-

Abstract

A comparison of the secondary emission (photoluminescence) and Bragg reflection spectra of photonic crystals (PC), namely, synthetic opals, opals infiltrated by colloidal gold, glycine, and a complex of colloidal gold with glycine is performed. The infiltration of colloidal gold and a complex of colloidal gold with glycine into the pores of PC causes a short-wavelength shift (about 5–15 nm) of the Bragg reflection and increases the intensity of this band by 1.5–3 times. In photoluminescence, the infiltration of PC by colloidal gold and colloidal gold with glycine suppresses the PC emission band near 375–450 nm and enhances the shoulder of the stop-zone band of PC in the region of 470–510 nm. The shape of the observed PC emission band connected with defects in synthetic opal is determined by the type of infiltrates and the excitation wavelength. Possible
mechanisms of the effects are discussed.

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Published

2012-02-15

How to Cite

Dovbeshko, G., Fesenko, O., Boyko, V., Romanyuk, V., Gorelik, V., Moiseyenko, V., Sobolev, V., & Shvalagin, V. (2012). Secondary Emission From Synthetic Opal Infiltrated by Colloidal Gold and Glycine. Ukrainian Journal of Physics, 57(2), 154. https://doi.org/10.15407/ujpe57.2.154

Issue

Section

Atoms and molecules

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