Vietnam 2017

   Nanophysics, from fundamental to applications : reloaded

30 Jul-5 Aug 2017 Quy Nhon (Vietnam)

 

ICISE

Quantum transport in graphene p-n junctions in the quantum Hall regime
François Parmentier  1@  , Norio Kumada  2  , Hiroki Hibino  2  , Christian Glattli  1@  , Preden Roulleau  1@  
1 : Service de Physique de l'Etat Condensé  (SPEC, CEA, CNRS, Université Paris-Saclay)
Commissariat à l'Energie Atomique et aux Energies Alternatives (CEA) - Saclay
CEA-Saclay 91191 Gif-sur-Yvette, France -  France
2 : NTT Basic Research Laboratories  -  Website

Graphene offers a unique system to investigate transport of Dirac Fermions at pn junctions. In a magnetic field, combination of quantum Hall physics and the characteristic transport across pn junctions leads to a fractionally quantized conductance associated with the mixing of electron-like and hole-like modes and their subsequent partitioning. The mixing and partitioning suggest that a pn junction could be used as an electronic beam splitter. Here we report the shot noise study of the mode-mixing process and demonstrate the crucial role of the pn junction length. For short pn junctions, the amplitude of the noise is consistent with an electronic beam-splitter behaviour, whereas, for longer pn junctions, it is reduced by the energy relaxation. Remarkably, the relaxation length is much larger than typical size of mesoscopic devices, encouraging using graphene for electron quantum optics and quantum information processing.

N. Kumada, F. D. Parmentier, H. Hibino, D. C. Glattli, & P. Roulleau, Nature Communications 6, 8068 (2015)


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