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The performance limits of epigraphene Hall sensors

Materials Science 2020-06-18 v1 Applied Physics Instrumentation and Detectors

Abstract

Epitaxial graphene on silicon carbide, or epigraphene, provides an excellent platform for Hall sensing devices in terms of both high electrical quality and scalability. However, the challenge in controlling its carrier density has thus far prevented systematic studies of epigraphene Hall sensor performance. In this work we investigate epigraphene Hall sensors where epigraphene is doped across the Dirac point using molecular doping. Depending on the carrier density, molecular-doped epigraphene Hall sensors reach room temperature sensitivities SV=0.23V/VTS_V=0.23 V/VT,SI=1440V/ATS_I=1440 V/AT and magnetic field detection limits down to BMIN=27B_{MIN}=27 nT/HznT/\sqrt{Hz} at 20 kHz. Thermally stabilized devices demonstrate operation up to T=150T=150 oC^oC with SV=0.12V/VTS_V=0.12 V/VT, SI=300V/ATS_I=300 V/AT and BMIN100B_{MIN}\approx 100 nT/HznT/\sqrt{Hz} at 20 kHz.

Keywords

Cite

@article{arxiv.2003.08147,
  title  = {The performance limits of epigraphene Hall sensors},
  author = {Hans He and Naveen Shetty and Thilo Bauch and Sergey Kubatkin and Timo Kaufmann and Martin Cornills and Rositsa Yakimova and Samuel Lara-Avila},
  journal= {arXiv preprint arXiv:2003.08147},
  year   = {2020}
}