May 2024

Journal

Thermoelectric Limitations of Graphene Nanodevices at Ultrahigh Current Densities

By:
Dyck, Ondrej E; Evangeli, Charalambos; Swett, Jacob; Spiece, Jean; Mc cann, Edward; Fried, Jasper; Harzheim, Achim; Lupini, Andrew R; Briggs, Andrew; Gehring, Pascal; Jesse, Stephen ; Kolosov, Oleg; Mol, Jan
Journal Name:
ACS Nano
Page Number:
11153-11164
Volume:
18
Issue Number:
17
Publication Date:
May 16, 2024
View DOI Listing:
https://doi.org/10.1021/acsnano.3c12930

Abstract

Graphene is atomically thin, possesses excellent thermal conductivity, and is able to withstand high current densities, making it attractive for many nanoscale applications such as field-effect transistors, interconnects, and thermal management layers. Enabling integration of graphene into such devices requires nanostructuring, which can have a drastic impact on the self-heating properties, in particular at high current densities. Here, we use a combination of scanning thermal microscopy, finite element thermal analysis, and operando scanning transmission electron microscopy techniques to observe prototype graphene devices in operation and gain a deeper understanding of the role of geometry and interfaces during high current density operation. We find that Peltier effects significantly influence the operational limit due to local electrical and thermal interfacial effects, causing asymmetric temperature distribution in the device. Thus, our results indicate that a proper understanding and design of graphene devices must include consideration of the surrounding materials, interfaces, and geometry. Leveraging these aspects provides opportunities for engineered extreme operation devices.