TY - JOUR
T1 - Double stranded antiferromagnetic helix as an efficient spin filter
AU - Gupta, Debjani Das
AU - Maiti, Santanu K.
AU - Pérez, Laura M.
AU - Silva, Judith Helena Ojeda
AU - Laroze, David
N1 - Publisher Copyright:
© 2023 The Author(s)
PY - 2023/9
Y1 - 2023/9
N2 - We report a large degree of spin filtration in a double stranded (ds) antiferromagnetic helix (AFH) system. Generally spin channel separation is not possible when a magnetic system possesses a vanishing net magnetization. But we show that a highly polarized spin current can be obtained through the ds AFH when it is subjected to a transverse electric field. Describing the physical system within a tight-binding framework, spin-dependent transport phenomena are studied using the well known Green's function formalism. The effects of chirality (left-handed and right-handed), electric field, electronic hopping (short-range and long-range) in each strand, system temperature, and size of the helix on spin filtration are critically investigated. Two different configurations of magnetic moments in the helix are taken into account, for a more general description. Suitably adjusting the physical parameters, almost cent percent spin polarization can be substantiated and that feature persists even for a broad parameter range. Our analysis may open up a new direction for achieving spin-selective electron transmission and designing of controlled spintronic devices using similar kinds of fascinating helical magnetic systems.
AB - We report a large degree of spin filtration in a double stranded (ds) antiferromagnetic helix (AFH) system. Generally spin channel separation is not possible when a magnetic system possesses a vanishing net magnetization. But we show that a highly polarized spin current can be obtained through the ds AFH when it is subjected to a transverse electric field. Describing the physical system within a tight-binding framework, spin-dependent transport phenomena are studied using the well known Green's function formalism. The effects of chirality (left-handed and right-handed), electric field, electronic hopping (short-range and long-range) in each strand, system temperature, and size of the helix on spin filtration are critically investigated. Two different configurations of magnetic moments in the helix are taken into account, for a more general description. Suitably adjusting the physical parameters, almost cent percent spin polarization can be substantiated and that feature persists even for a broad parameter range. Our analysis may open up a new direction for achieving spin-selective electron transmission and designing of controlled spintronic devices using similar kinds of fascinating helical magnetic systems.
KW - Beyond nearest-neighbor hopping
KW - Double stranded antiferromagnetic helix
KW - Green's function formalism
KW - Spin filtration
KW - Tight-binding framework
KW - Transverse electric field
UR - https://www.scopus.com/pages/publications/85169813802
U2 - 10.1016/j.rinp.2023.106918
DO - 10.1016/j.rinp.2023.106918
M3 - Article
AN - SCOPUS:85169813802
SN - 2211-3797
VL - 52
JO - Results in Physics
JF - Results in Physics
M1 - 106918
ER -