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Quantized Majorana conductance.
Zhang, Hao; Liu, Chun-Xiao; Gazibegovic, Sasa; Xu, Di; Logan, John A; Wang, Guanzhong; van Loo, Nick; Bommer, Jouri D S; de Moor, Michiel W A; Car, Diana; Op Het Veld, Roy L M; van Veldhoven, Petrus J; Koelling, Sebastian; Verheijen, Marcel A; Pendharkar, Mihir; Pennachio, Daniel J; Shojaei, Borzoyeh; Lee, Joon Sue; Palmstrøm, Chris J; Bakkers, Erik P A M; Sarma, S Das; Kouwenhoven, Leo P.
Afiliação
  • Zhang H; QuTech and Kavli Institute of NanoScience, Delft University of Technology, 2600 GA Delft, The Netherlands.
  • Liu CX; Condensed Matter Theory Center and Joint Quantum Institute, Department of Physics, University of Maryland, College Park, Maryland 20742, USA.
  • Gazibegovic S; Department of Applied Physics, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands.
  • Xu D; QuTech and Kavli Institute of NanoScience, Delft University of Technology, 2600 GA Delft, The Netherlands.
  • Logan JA; Materials Engineering, University of California Santa Barbara, Santa Barbara, California 93106, USA.
  • Wang G; QuTech and Kavli Institute of NanoScience, Delft University of Technology, 2600 GA Delft, The Netherlands.
  • van Loo N; QuTech and Kavli Institute of NanoScience, Delft University of Technology, 2600 GA Delft, The Netherlands.
  • Bommer JDS; QuTech and Kavli Institute of NanoScience, Delft University of Technology, 2600 GA Delft, The Netherlands.
  • de Moor MWA; QuTech and Kavli Institute of NanoScience, Delft University of Technology, 2600 GA Delft, The Netherlands.
  • Car D; Department of Applied Physics, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands.
  • Op Het Veld RLM; Department of Applied Physics, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands.
  • van Veldhoven PJ; Department of Applied Physics, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands.
  • Koelling S; Department of Applied Physics, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands.
  • Verheijen MA; Department of Applied Physics, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands.
  • Pendharkar M; Philips Innovation Services Eindhoven, High Tech Campus 11, 5656AE Eindhoven, The Netherlands.
  • Pennachio DJ; Electrical and Computer Engineering, University of California Santa Barbara, Santa Barbara, California 93106, USA.
  • Shojaei B; Materials Engineering, University of California Santa Barbara, Santa Barbara, California 93106, USA.
  • Lee JS; Materials Engineering, University of California Santa Barbara, Santa Barbara, California 93106, USA.
  • Palmstrøm CJ; California NanoSystems Institute, University of California Santa Barbara, Santa Barbara, California 93106, USA.
  • Bakkers EPAM; California NanoSystems Institute, University of California Santa Barbara, Santa Barbara, California 93106, USA.
  • Sarma SD; Materials Engineering, University of California Santa Barbara, Santa Barbara, California 93106, USA.
  • Kouwenhoven LP; Electrical and Computer Engineering, University of California Santa Barbara, Santa Barbara, California 93106, USA.
Nature ; 556(7699): 74-79, 2018 04 05.
Article em En | MEDLINE | ID: mdl-29590094
ABSTRACT
Majorana zero-modes-a type of localized quasiparticle-hold great promise for topological quantum computing. Tunnelling spectroscopy in electrical transport is the primary tool for identifying the presence of Majorana zero-modes, for instance as a zero-bias peak in differential conductance. The height of the Majorana zero-bias peak is predicted to be quantized at the universal conductance value of 2e2/h at zero temperature (where e is the charge of an electron and h is the Planck constant), as a direct consequence of the famous Majorana symmetry in which a particle is its own antiparticle. The Majorana symmetry protects the quantization against disorder, interactions and variations in the tunnel coupling. Previous experiments, however, have mostly shown zero-bias peaks much smaller than 2e2/h, with a recent observation of a peak height close to 2e2/h. Here we report a quantized conductance plateau at 2e2/h in the zero-bias conductance measured in indium antimonide semiconductor nanowires covered with an aluminium superconducting shell. The height of our zero-bias peak remains constant despite changing parameters such as the magnetic field and tunnel coupling, indicating that it is a quantized conductance plateau. We distinguish this quantized Majorana peak from possible non-Majorana origins by investigating its robustness to electric and magnetic fields as well as its temperature dependence. The observation of a quantized conductance plateau strongly supports the existence of Majorana zero-modes in the system, consequently paving the way for future braiding experiments that could lead to topological quantum computing.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nature Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Holanda

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nature Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Holanda