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Energy dissipation mechanism revealed by spatially resolved Raman thermometry of graphene/hexagonal boron nitride heterostructure devices

  • Daehee Kim
  • , Hanul Kim
  • , Wan Soo Yun
  • , Kenji Watanabe
  • , Takashi Taniguchi
  • , Heesuk Rho
  • , Myung Ho Bae
  • Korea Research Institute of Standards and Science
  • Sungkyunkwan University
  • Jeonbuk National University
  • National Institute for Materials Science Tsukuba
  • University of Science and Technology UST

Research output: Contribution to journalJournal articlepeer-review

Abstract

Understanding the energy transport by charge carriers and phonons in two-dimensional (2D) van der Waals heterostructures is essential for the development of future energy-efficient 2D nanoelectronics. Here, we performed in situ spatially resolved Raman thermometry on an electrically biased graphene channel and its hBN substrate to study the energy dissipation mechanism in graphene/hBN heterostructures. By comparing the temperature profile along the biased graphene channel with that along the hBN substrate, we found that the thermal boundary resistance between the graphene and hBN was in the range of (1-2) 10-7 m2 K W-1 from ∼100 °C to the onset of graphene break-down at ∼600 °C in air. Consideration of an electro-thermal transport model together with the Raman thermometry conducted in air showed that a doping effect occurred under a strong electric field played a crucial role in the energy dissipation of the graphene/hBN device up to T ∼ 600 °C.

Original languageEnglish
Article number025009
Journal2D Materials
Volume5
Issue number2
DOIs
StatePublished - 2018.02.12

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • energy dissipation
  • graphene/hBN heterojunction
  • local doping effect
  • Raman thermometry
  • thermal boundary resistance

Quacquarelli Symonds(QS) Subject Topics

  • Engineering - Mechanical
  • Materials Science
  • Chemistry
  • Physics & Astronomy

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