Issue 3, 2016

Nonequilibrium spin injection in monolayer black phosphorus

Abstract

Monolayer black phosphorus (MBP) is an interesting emerging electronic material with a direct band gap and relatively high carrier mobility. In this work we report a theoretical investigation of nonequilibrium spin injection and spin-polarized quantum transport in MBP from ferromagnetic Ni contacts, in two-dimensional magnetic tunneling structures. We investigate physical properties such as the spin injection efficiency, the tunnel magnetoresistance ratio, spin-polarized currents, charge currents and transmission coefficients as a function of external bias voltage, for two different device contact structures where MBP is contacted by Ni(111) and by Ni(100). While both structures are predicted to give respectable spin-polarized quantum transport, the Ni(100)/MBP/Ni(100) trilayer has the superior properties where the spin injection and magnetoresistance ratio maintains almost a constant value against the bias voltage. The nonequilibrium quantum transport phenomenon is understood by analyzing the transmission spectrum at nonequilibrium.

Graphical abstract: Nonequilibrium spin injection in monolayer black phosphorus

Article information

Article type
Paper
Submitted
06 Aug 2015
Accepted
30 Nov 2015
First published
07 Dec 2015

Phys. Chem. Chem. Phys., 2016,18, 1601-1606

Author version available

Nonequilibrium spin injection in monolayer black phosphorus

M. Chen, Z. Yu, Y. Wang, Y. Xie, J. Wang and H. Guo, Phys. Chem. Chem. Phys., 2016, 18, 1601 DOI: 10.1039/C5CP04652A

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