Yeau-Ren Jeng et al 2004 Nanotechnology 15 1737 doi:10.1088/0957-4484/15/12/006
Yeau-Ren Jeng1,3, Ping-Chi Tsai1 and Te-Hua Fang2
Show affiliationsThis study adopts a classical molecular dynamics (MD) simulation with the realistic Tersoff many-body potential model to investigate the mechanical properties of gallium nitride (GaN) nanotubes. The investigation focuses primarily on the mechanical properties of (n,0) and (n,n) GaN nanotubes since these particular nanotubes represent two extreme cases. The present results indicate that under small strain conditions, mechanical properties such as Young's modulus are insensitive to the wrapping angle. Conversely, the wrapping angle has a significant influence upon these mechanical properties under large strain conditions. It is demonstrated that (9,0) GaN nanotubes are far less resistant to bond rotation. Under large tensile strain conditions, due to the unfavourable bond orientations induced by Stone–Wales (SW) transformation, the bonds in (n,0) GaN tubes quickly degenerate. Moreover, the present results suggest that the tensile strength of a nanotube is strongly sensitive to the temperature and strain rate. Regarding the fatigue test, this study uses a standard theoretical model to derive curves of amplitude stress versus number of cycles for the current nanotubes. The results demonstrate that the fatigue limit of GaN nanotubes increases with increasing temperature.
Issue 12 (December 2004)
Received 3 August 2004, in final form 4 October 2004
Published 3 November 2004
Yeau-Ren Jeng et al 2004 Nanotechnology 15 1737
Doug Johnstone et al. 2006 ApJ 639 259
J Haug et al 2009 J. Phys.: Conf. Ser. 190 012124
D R Matravers and J Triginer 2001 Class. Quantum Grav. 18 3917
Maria Antoniadou et al 2009 Nanotechnology 20 495201
Shumin Wang and Jeff H Duyn 2008 Phys. Med. Biol. 53 2677
L E Ballentine and M Huberman 1980 J. Phys. C: Solid State Phys. 13 2331
Franco Ferrari 2003 J. Phys. A: Math. Gen. 36 5083
M F Moyers 2008 Phys. Med. Biol. 53 N165
Hüsnü Baysal and Ihsan Yilmaz 2002 Class. Quantum Grav. 19 6435