Literature DB >> 23517063

Spontaneous alloy composition ordering in GaAs-AlGaAs core-shell nanowires.

Daniel Rudolph1, Stefan Funk, Markus Döblinger, Stefanie Morkötter, Simon Hertenberger, Lucas Schweickert, Jonathan Becker, Sonja Matich, Max Bichler, Danĉe Spirkoska, Ilaria Zardo, Jonathan J Finley, Gerhard Abstreiter, Gregor Koblmüller.   

Abstract

By employing various high-resolution metrology techniques we directly probe the material composition profile within GaAs-Al0.3Ga0.7As core-shell nanowires grown by molecular beam epitaxy on silicon. Micro Raman measurements performed along the entire (>10 μm) length of the [111]-oriented nanowires reveal excellent average compositional homogeneity of the nominally Al0.3Ga0.7As shell. In strong contrast, along the radial direction cross-sectional scanning transmission electron microscopy and associated chemical analysis reveal rich structure in the AlGaAs alloy composition due to interface segregation, nanofaceting, and local alloy fluctuations. Most strikingly, we observe a 6-fold Al-rich substructure along the corners of the hexagonal AlGaAs shell where the Al-content is up to x ~ 0.6, a factor of 2 larger than the body of the AlGaAs shell. This is associated with facet-dependent capillarity diffusion due to the nonplanarity of shell growth. A modulation of the Al-content is also found along the radial [110] growth directions of the AlGaAs shell. Besides the ~10(3)-fold enhancement of the photoluminescence yield due to inhibition of nonradiative surface recombination, the AlGaAs shell gives rise to a broadened band of sharp-line luminescence features extending ~150-30 meV below the band gap of Al0.3Ga0.7As. These features are attributed to deep level defects under influence of the observed local alloy fluctuations in the shell.

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Year:  2013        PMID: 23517063     DOI: 10.1021/nl3046816

Source DB:  PubMed          Journal:  Nano Lett        ISSN: 1530-6984            Impact factor:   11.189


  6 in total

1.  Lattice-Matched InGaAs-InAlAs Core-Shell Nanowires with Improved Luminescence and Photoresponse Properties.

Authors:  Julian Treu; Thomas Stettner; Marc Watzinger; Stefanie Morkötter; Markus Döblinger; Sonja Matich; Kai Saller; Max Bichler; Gerhard Abstreiter; Jonathan J Finley; Julian Stangl; Gregor Koblmüller
Journal:  Nano Lett       Date:  2015-05-04       Impact factor: 11.189

2.  Modeling of the growth of GaAs-AlGaAs core-shell nanowires.

Authors:  Qian Zhang; Peter W Voorhees; Stephen H Davis
Journal:  Beilstein J Nanotechnol       Date:  2017-02-24       Impact factor: 3.649

3.  Bi incorporation and segregation in the MBE-grown GaAs-(Ga,Al)As-Ga(As,Bi) core-shell nanowires.

Authors:  Janusz Sadowski; Anna Kaleta; Serhii Kryvyi; Dorota Janaszko; Bogusława Kurowska; Marta Bilska; Tomasz Wojciechowski; Jarosław Z Domagala; Ana M Sanchez; Sławomir Kret
Journal:  Sci Rep       Date:  2022-04-09       Impact factor: 4.379

4.  Nonlinear elastic aspects of multi-component iron oxide core-shell nanowires by means of atom probe tomography, analytical microscopy, and nonlinear mechanics.

Authors:  Gábor Csiszár; Helena Solodenko; Robert Lawitzki; Wenhao Ma; Christopher Everett; Orsolya Csiszár
Journal:  Nanoscale Adv       Date:  2020-11-26

5.  Strained GaAs/InGaAs Core-Shell Nanowires for Photovoltaic Applications.

Authors:  K Moratis; S L Tan; S Germanis; C Katsidis; M Androulidaki; K Tsagaraki; Z Hatzopoulos; F Donatini; J Cibert; Y-M Niquet; H Mariette; N T Pelekanos
Journal:  Nanoscale Res Lett       Date:  2016-04-01       Impact factor: 4.703

6.  Three-Dimensional Composition and Electric Potential Mapping of III-V Core-Multishell Nanowires by Correlative STEM and Holographic Tomography.

Authors:  Daniel Wolf; René Hübner; Tore Niermann; Sebastian Sturm; Paola Prete; Nico Lovergine; Bernd Büchner; Axel Lubk
Journal:  Nano Lett       Date:  2018-07-17       Impact factor: 11.189

  6 in total

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