In the context of graphene-based composite applications, a complete understanding of charge conduction in multilayer reduced graphene oxides (rGO) is highly desirable. However, these rGO compounds are characterized by multiple and different sources of disorder depending on the chemical method used for their synthesis. Most importantly the precise role of interlayer interaction in promoting or jeopardizing electronic flow remains unclear. Here, thanks to the development of a multiscale computational approach combining first-principles calculations with large scale transport simulations, the transport scaling laws in multilayer rGO are unraveled, explaining why diffusion worsens with increasing film thickness. In contrast, contacted films are found to exhibit an opposite trend when the mean free path becomes shorter than the channel length, since conduction becomes predominantly driven by interlayer hopping. These predictions are favourably compared with experimental data and open a road towards the optimization of graphene-based composites with improved electrical conduction.
@article{arxiv.2201.13437,
title = {Towards Optimized Charge Transport in Multilayer Reduced Graphene Oxides},
author = {Mustafa Neset Cinar and Aleandro Antidormi and Viet-Hung Nguyen and Alessandro Kovtun and Samuel Lara Avila and Andrea Liscio and Jean-Christophe Charlier and Stephan Roche and Haldun Sevincli},
journal= {arXiv preprint arXiv:2201.13437},
year = {2022}
}
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19 pages main text, 18 pages Supporting Information