Title :
Spin-dependent bandgap structures and spin filtering in graphene with multiple ferromagnetic barriers
Author :
Zhang, R. ; Li, J. ; Sun, R. ; Peng, R. ; Huang, R. ; Wang, M.
Author_Institution :
Dept. of Phys., Nanjing Univ., Nanjing, China
Abstract :
Motivated by the experimental isolation of graphene [1], intense investigations have been paid the physical properties of the two-dimensional (2D) honeycomb lattice. Graphene is regarded as a promising material for spintronic applications due to its weak spin-orbit coupling and long spin lifetimes [2]. Up to now, several groups have studied the spin transport properties in graphene with magnetic and electrostatic modulation potentials [3]. How to get efficient spin filtering is one of the research focuses for the application of spintronics. In this work, we investigate spin-dependent bandgap structures and spin filtering in graphene with multiple ferromagnetic barriers. It is shown that the spin-up and spin-down electrons possess different bandgap structures in the case of oblique incidence. As a result, full spin polarization can be achieved within several separated energy intervals. The width of the energy interval with full spin polarization can be effectively manipulated by adjusting the strength of the exchange field. Correspondingly, conductance steps with full spin polarization are observed in the systems. Our investigations may have potential applications in the design of carbon-based spin filters.
Keywords :
energy gap; exchange interactions (electron); ferromagnetic materials; graphene; honeycomb structures; spin polarised transport; spin-orbit interactions; carbon-based spin filter design; conductance steps; electrostatic modulation potentials; energy interval width; exchange field strength; ferromagnetic barriers; graphene; magnetic modulation potentials; multiple ferromagnetic barriers; spin filtering; spin lifetimes; spin polarization; spin transport properties; spin-dependent bandgap structures; spin-down electrons; spin-orbit coupling; spin-up electrons; spintronic applications; two-dimensional honeycomb lattice; Electric potential; Filtering; Graphene; Magnetoelectronics; Photonic band gap; Reflection; Strips;
Conference_Titel :
Magnetics Conference (INTERMAG), 2015 IEEE
Conference_Location :
Beijing
Print_ISBN :
978-1-4799-7321-7
DOI :
10.1109/INTMAG.2015.7157757