Nonreciprocal charge transport in polar Dirac metals with tunable spin-valley coupling

Nonreciprocal charge transport in solids, where resistance is different between rightward and leftward currents, is a key function of rectifying devices in modern electronics, as exemplified by p-n semiconductor junctions. Recently, this was also demonstrated in noncentrosymmetric materials in magne...

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Main Authors: M. Kondo, M. Kimata, M. Ochi, T. Kaneko, K. Kuroki, K. Sudo, S. Sakaguchi, H. Murakawa, N. Hanasaki, H. Sakai
Format: Article
Language:English
Published: American Physical Society 2025-01-01
Series:Physical Review Research
Online Access:http://doi.org/10.1103/PhysRevResearch.7.013041
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author M. Kondo
M. Kimata
M. Ochi
T. Kaneko
K. Kuroki
K. Sudo
S. Sakaguchi
H. Murakawa
N. Hanasaki
H. Sakai
author_facet M. Kondo
M. Kimata
M. Ochi
T. Kaneko
K. Kuroki
K. Sudo
S. Sakaguchi
H. Murakawa
N. Hanasaki
H. Sakai
author_sort M. Kondo
collection DOAJ
description Nonreciprocal charge transport in solids, where resistance is different between rightward and leftward currents, is a key function of rectifying devices in modern electronics, as exemplified by p-n semiconductor junctions. Recently, this was also demonstrated in noncentrosymmetric materials in magnetic fields since their band structure exhibits spin polarization coupled to the position of momentum space due to antisymmetric spin-orbit coupling. To enhance the magnitude of the nonreciprocal effect, it is essential to tune such spin-momentum coupling, which has been hampered in conventional materials owing to the difficulty in controlling the broken inversion symmetry built into the lattice and interfacial structures. Here, we report large nonreciprocal resistivity in the layered polar metal BaMnX_{2} (X=Sb, Bi), where the spin-polarized Dirac dispersion depends on the in-plane polarization tunable by chemical substitution of the X site. For X=Sb with a pair of single-type valleys, the nonreciprocal resistivity increases monotonically with decreasing temperature, while for X=Bi with multiple types of valleys it is reduced by about an order of magnitude and exhibits a peak at a low temperature. Theoretical calculations indicate that the nonreciprocal resistivity is sensitive not only to the spin-momentum (spin-valley) coupling but also to the Fermi energy and the Dirac dispersion. The observed significant variation of nonreciprocal transport in the same series of materials might be of great use in the design of junction-free rectifying devices and circuits.
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spelling doaj-art-b560f60d5c9442f18db7db4e0b5232e02025-01-10T15:06:08ZengAmerican Physical SocietyPhysical Review Research2643-15642025-01-017101304110.1103/PhysRevResearch.7.013041Nonreciprocal charge transport in polar Dirac metals with tunable spin-valley couplingM. KondoM. KimataM. OchiT. KanekoK. KurokiK. SudoS. SakaguchiH. MurakawaN. HanasakiH. SakaiNonreciprocal charge transport in solids, where resistance is different between rightward and leftward currents, is a key function of rectifying devices in modern electronics, as exemplified by p-n semiconductor junctions. Recently, this was also demonstrated in noncentrosymmetric materials in magnetic fields since their band structure exhibits spin polarization coupled to the position of momentum space due to antisymmetric spin-orbit coupling. To enhance the magnitude of the nonreciprocal effect, it is essential to tune such spin-momentum coupling, which has been hampered in conventional materials owing to the difficulty in controlling the broken inversion symmetry built into the lattice and interfacial structures. Here, we report large nonreciprocal resistivity in the layered polar metal BaMnX_{2} (X=Sb, Bi), where the spin-polarized Dirac dispersion depends on the in-plane polarization tunable by chemical substitution of the X site. For X=Sb with a pair of single-type valleys, the nonreciprocal resistivity increases monotonically with decreasing temperature, while for X=Bi with multiple types of valleys it is reduced by about an order of magnitude and exhibits a peak at a low temperature. Theoretical calculations indicate that the nonreciprocal resistivity is sensitive not only to the spin-momentum (spin-valley) coupling but also to the Fermi energy and the Dirac dispersion. The observed significant variation of nonreciprocal transport in the same series of materials might be of great use in the design of junction-free rectifying devices and circuits.http://doi.org/10.1103/PhysRevResearch.7.013041
spellingShingle M. Kondo
M. Kimata
M. Ochi
T. Kaneko
K. Kuroki
K. Sudo
S. Sakaguchi
H. Murakawa
N. Hanasaki
H. Sakai
Nonreciprocal charge transport in polar Dirac metals with tunable spin-valley coupling
Physical Review Research
title Nonreciprocal charge transport in polar Dirac metals with tunable spin-valley coupling
title_full Nonreciprocal charge transport in polar Dirac metals with tunable spin-valley coupling
title_fullStr Nonreciprocal charge transport in polar Dirac metals with tunable spin-valley coupling
title_full_unstemmed Nonreciprocal charge transport in polar Dirac metals with tunable spin-valley coupling
title_short Nonreciprocal charge transport in polar Dirac metals with tunable spin-valley coupling
title_sort nonreciprocal charge transport in polar dirac metals with tunable spin valley coupling
url http://doi.org/10.1103/PhysRevResearch.7.013041
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