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Graphene on h-BN: to align or not to align?

Authors :
Erio Tosatti
Merel van Wijk
Roberto Guerra
Andrea Vanossi
Annalisa Fasolino
Source :
Nanoscale (Online) 9 (2017): 8799–8804. doi:10.1039/c7nr02352a, info:cnr-pdr/source/autori:Guerra R.; Van Wijk M.; Vanossi A.; Fasolino A.; Tosatti E./titolo:Graphene on h-BN: To align or not to align?/doi:10.1039%2Fc7nr02352a/rivista:Nanoscale (Online)/anno:2017/pagina_da:8799/pagina_a:8804/intervallo_pagine:8799–8804/volume:9, Nanoscale, 9, 8799-8804, Nanoscale, 9, 25, pp. 8799-8804
Publication Year :
2017
Publisher :
Royal Society of Chemistry (RSC), 2017.

Abstract

The contact strength, adhesion and friction, between graphene and an incommensurate crystalline substrate such as {\it h}-BN depends on their relative alignment angle $\theta$. The well established Novaco-McTague (NM) theory predicts for a monolayer graphene on a hard bulk {\it h}-BN crystal face a small spontaneous misalignment, here $\theta_{NM}$\,$\simeq$\,0.45 degrees which if realized would be relevant to a host of electronic properties besides the mechanical ones. Because experimental equilibrium is hard to achieve, we inquire theoretically about alignment or misalignment by simulations based on dependable state-of-the-art interatomic force fields. Surprisingly at first, we find compelling evidence for $\theta = 0$, i.e., full energy-driven alignment in the equilibrium state of graphene on {\it h}-BN. Two factors drive this deviation from NM theory. First, graphene is not flat, developing on {\it h}-BN a long-wavelength out-of-plane corrugation. Second, {\it h}-BN is not hard, releasing its contact stress by planar contractions/expansions that accompany the interface moir\'e structure. Repeated simulations by artificially forcing graphene to keep flat, and {\it h}-BN to keep rigid, indeed yield an equilibrium misalignment similar to $\theta_{NM}$ as expected. Subsequent sliding simulations show that friction of graphene on {\it h}-BN, small and essentially independent of misalignments in the artificial frozen state, strongly increases in the more realistic corrugated, strain-modulated, aligned state.

Details

ISSN :
20403372 and 20403364
Volume :
9
Database :
OpenAIRE
Journal :
Nanoscale
Accession number :
edsair.doi.dedup.....31ad0229d2ea7943f2491a92dd128dcf
Full Text :
https://doi.org/10.1039/c7nr02352a