Issue 8, 2014

Spin density waves in periodically strained graphene nanoribbons

Abstract

Zigzag graphene nanoribbons (ZGNRs) are antiferromagnetic in the ground state with zero net magnetization due to the compensation of contributions from opposite edges. Uniform deformations (both shear and axial) do not produce magnetization due to symmetry restrictions. However, we report the results of first-principles calculations that predict the induction of spin density waves (SDWs) in ZGNRs under non-uniform periodic strain. Using the density functional theory (DFT) method, we show that a sinusoidal magnetization variation along the axis of the ribbon occurs under a sinusoidal transversal shear strain. SDWs appear due to the presence of a strain gradient that induced asymmetry of magnetization on opposite edges of ZGNRs which do not compensate each other. The amplitude of SDWs is estimated at ∼0.066μB when deformations transverse to the ZGNR axis have a sinusoidal profile with a period of 88.6 Å and an amplitude of 1 Å. Our study suggests that the periodic lattice deformations strongly affect the magnetic structure of ZGNRs in the case of acoustic phonons or mechanical waves.

Graphical abstract: Spin density waves in periodically strained graphene nanoribbons

Article information

Article type
Paper
Submitted
22 Nov 2013
Accepted
31 Jan 2014
First published
03 Feb 2014

Nanoscale, 2014,6, 4285-4291

Author version available

Spin density waves in periodically strained graphene nanoribbons

N. M. Al-Aqtash and R. F. Sabirianov, Nanoscale, 2014, 6, 4285 DOI: 10.1039/C3NR06199J

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