Energy Dissipation in Monolayer MoS Electronics.

Nano Lett

Department of Electrical Engineering, ‡Department of Chemistry, §Department of Materials Science and Engineering, and ∥Precourt Institute for Energy, Stanford University, Stanford, California 94305, United States.

Published: June 2017

AI Article Synopsis

  • The advancement of nanoscale electronics is hindered by energy dissipation issues, especially in 2D semiconductors intertwined with flexible materials.
  • Researchers achieved the first direct measurement of temperature in 2D monolayer MoS transistors using Raman thermometry, uncovering important thermal characteristics.
  • Findings indicate that thermal boundary conductance is higher than previously thought and that small structural variations in MoS transistors don't lead to significant self-heating, offering valuable insights for future energy-efficient 2D electronics design.

Article Abstract

The advancement of nanoscale electronics has been limited by energy dissipation challenges for over a decade. Such limitations could be particularly severe for two-dimensional (2D) semiconductors integrated with flexible substrates or multilayered processors, both being critical thermal bottlenecks. To shed light into fundamental aspects of this problem, here we report the first direct measurement of spatially resolved temperature in functioning 2D monolayer MoS transistors. Using Raman thermometry, we simultaneously obtain temperature maps of the device channel and its substrate. This differential measurement reveals the thermal boundary conductance of the MoS interface with SiO (14 ± 4 MW m K) is an order magnitude larger than previously thought, yet near the low end of known solid-solid interfaces. Our study also reveals unexpected insight into nonuniformities of the MoS transistors (small bilayer regions) which do not cause significant self-heating, suggesting that such semiconductors are less sensitive to inhomogeneity than expected. These results provide key insights into energy dissipation of 2D semiconductors and pave the way for the future design of energy-efficient 2D electronics.

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Source
http://dx.doi.org/10.1021/acs.nanolett.7b00252DOI Listing

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