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Formation and characterization of varied size germanium nanocrystals by electron microscopy, Raman spectroscopy, and photoluminescence
Author(s) -
Haiyan Ou,
Ou Y,
Chuan Liu,
Rolf W. Berg,
Karsten Rottwitt
Publication year - 2011
Publication title -
optical materials express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.925
H-Index - 66
ISSN - 2159-3930
DOI - 10.1364/ome.1.000643
Subject(s) - photoluminescence , materials science , germanium , raman spectroscopy , nanocrystal , characterization (materials science) , spectroscopy , optoelectronics , microscopy , scanning electron microscope , electron microscope , transmission electron microscopy , optics , analytical chemistry (journal) , nanotechnology , silicon , chemistry , physics , chromatography , quantum mechanics , composite material
Germanium nanocrystals are being extensively examined. Their unique optical properties (brought about by the quantum confinement effect) could potentially be applied in wide areas of nonlinear optics, light emission and solid state memory etc. In this paper, Ge nanocrystals embedded in a SiO2 matrix were formed by complementary metal-oxide-semiconductor compatible technology, e.g. plasma enhanced chemical vapour deposition and annealing. Different sizes of the Ge nanocrystals were prepared and analyzed by transmission electron microscopy with respect to their size, distribution and crystallization. The samples of different size Ge nanocrystals embedded in the SiO2 matrix were characterized by Raman spectroscopy and photoluminescence. Interplayed size and strain effect of Ge nanocystals was demonstrated by Raman spectroscopy after excluding the thermal effect with proper excitation laser power. It was clarified that two strong emission peaks at 3.19 eV and 4.40 eV are from the interface between Ge nanocrystals and SiO2 matrix.

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