Title of article
Metamorphic self-assembled quantum dot nanostructures
Author/Authors
Seravalli، نويسنده , , L. and Frigeri، نويسنده , , P. and Minelli، نويسنده , , M. and Franchi، نويسنده , , S. and Allegri، نويسنده , , P. and Avanzini، نويسنده , , V.، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2006
Pages
4
From page
731
To page
734
Abstract
The light-emission energy E of self-assembled semiconductor quantum dots (QDs) is determined by the complex interplay of parameters such as compositions of QDs and confining layers (CLs), strain of QDs (imposed by the QD mismatch to CLs) and sizes and shapes of QDs. In order to have RT emission in the 1.55 μm photonic window from InAs QDs, the QD–CL lattice mismatch should be in the 4–5% range, values much lower than that of pseudomorphic InAs on GaAs (7%). We show that by: i) growing InAs QDs on virtual substrates consisting of metamorphic InGaAs buffers on GaAs and ii) using the thickness-dependent partial relaxation of buffers (acting also as lower CLs, LCLs) and suitable InGaAs compositions, the QD–CL mismatch can be tuned in the 5–7% range. Our experimental results on MBE-grown metamorphic InAs/InxGa1−xAs QD structures show that for x and LCL thicknesses d in the 0.09–0.35 and 20 nm–1000 nm ranges, respectively, the band-gap of the QD material and the band-discontinuities that confine carriers are such that the RT emission wavelengths range from 1.3 μm up to values that may exceed 1.55 μm. By using x and d as two degrees-of-freedom, not only that E can be selected but also the barrier energy for confined carriersʹ thermal escape can be maximised, in order to achieve efficient emission at RT.
Keywords
Quantum dot , metamorphic , Molecular Beam Epitaxy , nanostructured materials , 1.3 ?m light emission
Journal title
Materials Science and Engineering C
Serial Year
2006
Journal title
Materials Science and Engineering C
Record number
2098805
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