TY - JOUR
T1 - The interlayer shear effect on graphene multilayer resonators
AU - Liu, Yilun
AU - Xu, Zhiping
AU - Zheng, Quanshui
PY - 2011/8
Y1 - 2011/8
N2 - Graphene nanostrips with single or few layers can be used as bending resonators with extremely high sensitivity to environmental changes. In this paper we report molecular dynamics (MD) simulation results on the fundamental and secondary resonant frequencies f of cantilever graphene nanostrips with different layer number n and different nanostrip length L. The results deviate significantly from the prediction of not only the EulerBernoulli beam theory (f∝nL-2), but also the Timoshenkos model. Since graphene nanostrips have extremely high intralayer Youngs modulus and ultralow interlayer shear modulus, we propose a multibeam shear model (MBSM) that neglects the intralayer stretch but accounts for the interlayer shear. The MBSM prediction of the fundamental and secondary resonant frequencies f can be well expressed in the form f-fmono∝[(n1)/n]bL-2(1-b), where fmono denotes the corresponding resonant frequency as the layer number is 1, with b=0.61 and 0.77 for the fundamental and secondary resonant modes. Without any additional parameters fitting, the prediction from MBSM agrees excellently with the MD simulation results. The model is thus of importance for designing multilayer graphene nanostrips based applications, such as resonators, sensors and actuators, where interlayer shear has apparent impacts on the mechanical deformation, vibration and energy dissipation processes therein.
AB - Graphene nanostrips with single or few layers can be used as bending resonators with extremely high sensitivity to environmental changes. In this paper we report molecular dynamics (MD) simulation results on the fundamental and secondary resonant frequencies f of cantilever graphene nanostrips with different layer number n and different nanostrip length L. The results deviate significantly from the prediction of not only the EulerBernoulli beam theory (f∝nL-2), but also the Timoshenkos model. Since graphene nanostrips have extremely high intralayer Youngs modulus and ultralow interlayer shear modulus, we propose a multibeam shear model (MBSM) that neglects the intralayer stretch but accounts for the interlayer shear. The MBSM prediction of the fundamental and secondary resonant frequencies f can be well expressed in the form f-fmono∝[(n1)/n]bL-2(1-b), where fmono denotes the corresponding resonant frequency as the layer number is 1, with b=0.61 and 0.77 for the fundamental and secondary resonant modes. Without any additional parameters fitting, the prediction from MBSM agrees excellently with the MD simulation results. The model is thus of importance for designing multilayer graphene nanostrips based applications, such as resonators, sensors and actuators, where interlayer shear has apparent impacts on the mechanical deformation, vibration and energy dissipation processes therein.
KW - Molecular dynamics (MD)
KW - Multibeam shear model (MBSM)
KW - Multilayer graphene nanostrips
KW - Nanomechanical devices
KW - Resonant frequencies
UR - https://www.scopus.com/pages/publications/79957947754
U2 - 10.1016/j.jmps.2011.04.014
DO - 10.1016/j.jmps.2011.04.014
M3 - 文章
AN - SCOPUS:79957947754
SN - 0022-5096
VL - 59
SP - 1613
EP - 1622
JO - Journal of the Mechanics and Physics of Solids
JF - Journal of the Mechanics and Physics of Solids
IS - 8
ER -