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Giant Flexomagnetoelectric Effect in Dilute Magnetic Monolayer
Author(s) -
Shen YuHao,
Song YuXi,
Tong WenYi,
Shen XinWei,
Gong Shijing,
Duan ChunGang
Publication year - 2018
Publication title -
advanced theory and simulations
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.068
H-Index - 17
ISSN - 2513-0390
DOI - 10.1002/adts.201800048
Subject(s) - condensed matter physics , spintronics , magnetic field , electric field , spin polarization , materials science , fermi level , physics , electron , ferromagnetism , quantum mechanics
Spintronics rooted in the spin degree of freedom is of both theoretical and technological importance. The development of some fantastic properties for electrically controlling this degree of freedom encourages enormous effort to the research on magnetic systems which possess sensitive magnetic response to the electric field. Here, a giant flexomagnetoelectric effect is predicted in a typical dilute magnetic monolayer Mn‐doped MoS 2 . Combining lattice bending and magnetic doping, it is shown that the magnetic response and magnetic anisotropy can be greatly amplified under the applied electric field. Further investigations reveal that such an effect stems from the orbit‐dependent response of the single magnetic dopant. Physically, the electric field‐induced orbital polarization causes the spatial distribution change of the Mn‐3d orbital wavefunction, which is sensitive to the change of the orbital hybridization with the bent lattice. Hence the corresponding 3d energy levels can be controlled to shift near Fermi level via external electric field. These findings open a new route toward functional 2D materials design for flexible devices.