Abstract
Abstract
The design and control of spintronic devices is a research hotspot in the field of electronics, and pure carbon-based materials provide new opportunities for the construction of electronic devices with excellent performance. Using density functional theory in combination with nonequilibrium Green’s functions method, we design spin filter devices based on Penta-hexa-graphene (PHG) nanoribbons—a carbon nanomaterial in which the intrinsic magnetic moments combines with edge effects leading to a half-metallic property. Spin-resolved electronic transport studies show that such carbon-based devices can achieve nearly 100% spin filtering effect at low bias voltages. Such SEF can resist the influence of hydrogen passivation at different positions, but hardly survive under a hydrogen-rich environment. Our analysis show that the perfect SEF transport properties are caused by the magnetic and electronic properties of PHG nanoribbons, especially the magnetic moments on the quasi-sp
3 carbons. These interesting results indicate that PHG nanomaterials have very prominent application prospects in future spintronic devices.
Funder
Research and Development Program of Hunan
National Natural Science Foundation of China
National Supercomputer Center in Changsha
Scientific Research Foundation for Talented Scholars of Hunan Institute of Technology
Youth Technology Talents Support Scheme of Hengyang
Planned Science and Technology Project of Hengyang
Fund of Hunan Provincial Education Department
Natural Science Foundation of Hunan
Subject
Condensed Matter Physics,General Materials Science
Cited by
2 articles.
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