| Literature DB >> 29579392 |
Martin Friedl1, Kris Cerveny2, Pirmin Weigele2, Gozde Tütüncüoglu1, Sara Martí-Sánchez3, Chunyi Huang4, Taras Patlatiuk2, Heidi Potts1, Zhiyuan Sun4, Megan O Hill4, Lucas Güniat1, Wonjong Kim1, Mahdi Zamani1, Vladimir G Dubrovskii5, Jordi Arbiol3,6, Lincoln J Lauhon4, Dominik M Zumbühl2, Anna Fontcuberta I Morral1.
Abstract
Topological qubits based on Majorana Fermions have the potential to revolutionize the emerging field of quantum computing by making information processing significantly more robust to decoherence. Nanowires are a promising medium for hosting these kinds of qubits, though branched nanowires are needed to perform qubit manipulations. Here we report a gold-free templated growth of III-V nanowires by molecular beam epitaxy using an approach that enables patternable and highly regular branched nanowire arrays on a far greater scale than what has been reported thus far. Our approach relies on the lattice-mismatched growth of InAs on top of defect-free GaAs nanomembranes yielding laterally oriented, low-defect InAs and InGaAs nanowires whose shapes are determined by surface and strain energy minimization. By controlling nanomembrane width and growth time, we demonstrate the formation of compositionally graded nanowires with cross-sections less than 50 nm. Scaling the nanowires below 20 nm leads to the formation of homogeneous InGaAs nanowires, which exhibit phase-coherent, quasi-1D quantum transport as shown by magnetoconductance measurements. These results are an important advance toward scalable topological quantum computing.Entities:
Keywords: GaAs; InAs; nanoscale membranes; nanowires; template-assisted; weak localization
Year: 2018 PMID: 29579392 DOI: 10.1021/acs.nanolett.8b00554
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189