In-Plane Anisotropic Thermal Conductivity of Few-Layered Transition Metal Dichalcogenide Td-WTe 2

  • Yu Chen
  • , Bo Peng
  • , Chunxiao Cong
  • , Jingzhi Shang
  • , Lishu Wu
  • , Weihuang Yang
  • , Jiadong Zhou
  • , Peng Yu
  • , Hongbo Zhang
  • , Yanlong Wang
  • , Chenji Zou
  • , Jing Zhang
  • , Sheng Liu
  • , Qihua Xiong
  • , Hezhu Shao
  • , Zheng Liu
  • , Hao Zhang
  • , Wei Huang
  • , Ting Yu

Research output: Contribution to journalArticlepeer-review

61 Scopus citations

Abstract

2D Td-WTe 2 has attracted increasing attention due to its promising applications in spintronic, field-effect chiral, and high-efficiency thermoelectric devices. It is known that thermal conductivity plays a crucial role in condensed matter devices, especially in 2D systems where phonons, electrons, and magnons are highly confined and coupled. This work reports the first experimental evidence of in-plane anisotropic thermal conductivities in suspended Td-WTe 2 samples of different thicknesses, and is also the first demonstration of such anisotropy in 2D transition metal dichalcogenides. The results reveal an obvious anisotropy in the thermal conductivities between the zigzag and armchair axes. The theoretical calculation implies that the in-plane anisotropy is attributed to the different mean free paths along the two orientations. As thickness decreases, the phonon-boundary scattering increases faster along the armchair direction, resulting in stronger anisotropy. The findings here are crucial for developing efficient thermal management schemes when engineering thermal-related applications of a 2D system.

Original languageEnglish
Article number1804979
JournalAdvanced Materials
Volume31
Issue number7
DOIs
StatePublished - 15 Feb 2019

Keywords

  • 2D transition-metal dichalcogenides
  • in-plane anisotropy
  • mean free paths
  • suspended Td-WTe
  • thermal conductivity

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