Abstract:
When electron states in carbon nanotubes are characterized by two-dimensional wave vectors with the components K1K1 and K2K2 along the nanotube circumference and cylindrical axis, respectively, then two such vectors symmetric about a MM-point in the reciprocal space of graphene are shown to be related by the time-reversal operation. To each carbon nanotube there correspond five relevant MM-points with the following coordinates: K(1)1=N/2RK(1)1=N/2R, K(1)2=0K(1)2=0; K(2)1=M/2RK(2)1=M/2R, K(2)2=−π/TK(2)2=−π/T; K(3)1=(2N−M)/2RK(3)1=(2N−M)/2R, K(3)2=π/TK(3)2=π/T; K(4)1=(M+N)/2RK(4)1=(M+N)/2R, K(4)2=−π/TK(4)2=−π/T, and K(5)1=(N−M)/2RK(5)1=(N−M)/2R, K(5)2=π/TK(5)2=π/T, where NN and MM are the integers relating the chiral, ChCh, symmetry, RR, and translational, TT, vectors of the nanotube by NR=Ch+MTNR=Ch+MT, T=|T|T=|T|, and RR is the nanotube radius. We show that the states at the edges of the one-dimensional Brillouin zone which are symmetric about the MM-points with K2=±π/TK2=±π/T are degenerate due to the time-reversal symmetry.
Citation:
S. V. Goupalov, “Implications of time-reversal symmetry for band structure of single-wall carbon nanotubes”, Pis'ma v Zh. Èksper. Teoret. Fiz., 92:8 (2010), 559–562; JETP Letters, 92:8 (2010), 507–510