APS Logo

Controlling Nanoscale Thermal Expansion of Monolayer Transition Metal Dichalcogenides by Alloy Engineering

ORAL

Abstract

Two dimensional materials, such as transition metal dichalcogenides (TMDs), graphene, boron nitride (BN) are seen as promising materials for future high power/high frequency electronics. However, the large difference in the thermal expansion coefficient (TEC) between many of these 2D materials could impose a serious challenge for the design of monolayer-materials-based nano-devices. To address this challenge, alloy engineering of TMDs is used to tailor their TECs. Here, in-situ heating experiments in a scanning transmission electron microscope are combined with electron energy-loss spectroscopy and first-principles modeling of monolayer Mo1-xWxS2 with different alloying concentrations to determine the TEC. Significant changes in the TEC are seen as a function of chemical composition in Mo1-xWxS2, with the smallest TEC being reported for a configuration with the highest entropy. This study provides key insights into understanding of nanoscale phenomena that control TEC values of 2D materials.

Presenters

  • Robert Klie

    Univ of Illinois - Chicago, The University of Illinois at Chicago

Authors

  • Xuan Hu

    Univ of Illinois - Chicago

  • Zahra Hemmat

    Univ of Illinois - Chicago, The University of Illinois at Chicago

  • Leily Majidi

    Univ of Illinois - Chicago

  • John Cavin

    Department of Physics, Washington University in St. Louis, Washington University, St. Louis

  • Rohan Mishra

    Washington University in St. Louis, Washington University, St. Louis, Institute of Materials Science and Engineering, Washington University, St. Louis, Mechanical Engineering & Materials Science, Washington University in St. Louis, washington university in st. louis

  • Serdar Ogut

    Univ of Illinois - Chicago

  • Amin Salehi-Khojin

    Univ of Illinois - Chicago, The University of Illinois at Chicago

  • Robert Klie

    Univ of Illinois - Chicago, The University of Illinois at Chicago