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High-field 1/f noise in hBN-encapsulated graphene transistors

A. Schmitt1,*, D. Mele1,2, M. Rosticher1, T. Taniguchi3, K. Watanabe3, C. Maestre4, C. Journet4, V. Garnier5, G. Fève1 et al.

J. M. Berroir1, C. Voisin1, B. Plaçais1,†, and E. Baudin1,‡

  • 1Laboratoire de Physique de l'Ecole Normale Supérieure, ENS, Université PSL, CNRS, Sorbonne Université, Université Paris-Cité, 24 rue Lhomond, 75005 Paris, France
  • 2Université Lille, CNRS, Centrale Lille, Université Polytechnique Hauts-de-France, Junia-ISEN, UMR 8520-IEMN, F-59000 Lille, France.
  • 3Advanced Materials Laboratory, National Institute for Materials Science, Tsukuba, Ibaraki 305-0047, Japan
  • 4Laboratoire des Multimatériaux et Interfaces, UMR CNRS 5615, Université Lyon, Université Claude Bernard Lyon 1, F-69622 Villeurbanne, France
  • 5Université de Lyon, MATEIS, UMR CNRS 5510, INSA-Lyon, F-69621 Villeurbanne cedex, France

  • *aurelien.schmitt@phys.ens.fr
  • †bernard.placais@phys.ens.fr
  • ‡emmanuel.baudin@phys.ens.fr

Phys. Rev. B 107, L161104 – Published 10 April, 2023

DOI: https://doi.org/10.1103/PhysRevB.107.L161104

Abstract

1/f electronic noise is a conductance fluctuation, expressed in terms of a mobility “α-noise” by Hooge and Kleinpenning. Understanding this noise in graphene is key for high-performance electronics. Early investigations pointed out a deviation from the standard Hooge formula, with the free-carrier density substituted by a constant density nΔ∼1012cm−2. Here we investigate hBN-encapsulated graphene transistors where high mobility gives access to the velocity-saturation regime. We show that α-noise is still accounted for by the Hooge formula on substituting conductance by differential conductance G, resulting in a bell-shaped dependence of flicker noise with bias voltage. The same analysis holds in the Zener regime at even larger bias, with two main differences. The first one is a strong enhancement of the Hooge parameter reflecting the hundred-times larger coupling of interband excitations to the hyperbolic phonon-polariton (HPhP) modes of the midinfrared Reststrahlen (RS) bands of hBN, which is supported by microwave noise thermometry measurements. The second is an exponential suppression of this coupling at large fields, which we attribute to decoherence effects. The phenomenology of 1/f noise in graphene supports a quantum-coherent bremsstrahlung interpretation of α-noise.

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