arXiv · 2609.39278
Surface-Dependent Phonon Dynamics in 9-Armchair Graphene Nanoribbon Arrays
Abstract
Atomically precise graphene nanoribbons (GNRs) have electronic properties tunable through their width and edge structure, making them promising building blocks for nanoscale electronics and optoelectronics. Their integration into devices also requires understanding how the supporting surface and neighbouring ribbons affect their vibrations. Here, we use temperature-dependent Raman spectroscopy to compare five configurations of 9-armchair GNR arrays differing in substrate, alignment and coverage. Transferring the same unaligned film from Au to a Raman-optimised Al$_2$O$_3$-coated support reduces the measured $D$- and $G$-mode redshift rates by about 80\%. This reduction is consistent with a substantial thermoelastic contribution. The fitted strain and anharmonic contributions depend on the assumed thermal expansion and strain transfer. Compared with the low-coverage array, the dense aligned Au array has higher extrapolated reference frequencies ($ω_0$). On first heating, its $G$-mode linewidth decreases and then increases, forming an unusual intermediate-temperature minimum. The $D$-mode linewidth shows a similar, less pronounced variation. These findings establish substrate choice and array arrangement as routes to engineer nanoribbon vibrations, extending control beyond the atomic structure defined during synthesis.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Ángel Labordet Álvarez, Gabriela Borin Barin, Michel Calame, Mirjana Dimitrievska. 2026-10-08. Surface-Dependent Phonon Dynamics in 9-Armchair Graphene Nanoribbon Arrays. https://arxiv.org/abs/2609.39278
Cite the original work for its findings. Save a collection to share your selection of sources.