TY - JOUR
T1 - Reversible metal-insulator transition in SrIrO3 ultrathin layers by field effect control of inversion symmetry breaking
AU - Gallego, Fernando
AU - Tornos, Javier
AU - Beltran, Juan Ignacio
AU - Peralta, Andrea
AU - Garcia-Barriocanal, Javier
AU - Yu, Guichuan
AU - Rojas, Geoffrey
AU - Munuera, Carmen
AU - Cabero, Mariona
AU - Sanchez-Manzano, David
AU - Cuellar, Fabian
AU - Sanchez-Santolino, Gabriel
AU - Sefrioui, Zouhair
AU - Rivera-Calzada, Alberto
AU - Mompean, Federico Jose
AU - Garcia-Hernandez, Mar
AU - Leon, Carlos
AU - del Carmen Muñoz, Maria
AU - Santamaria, Jacobo
N1 - Publisher Copyright:
© 2023, The Author(s).
PY - 2023/12
Y1 - 2023/12
N2 - SrIrO3 is a correlated semimetal with narrow t2g d-bands of strong mixed orbital character resulting from the interplay of the spin-orbit interaction due to heavy iridium atoms and the band folding induced by the lattice structure. In ultrathin layers, inversion symmetry breaking, occurring naturally due to the presence of the substrate, opens new orbital hopping channels, which in presence of spin-orbit interaction causes deep modifications in the electronic structure. Here, we show that in SrIrO3 ultrathin films the effect of inversion symmetry breaking on the band structure can be externally manipulated in a field effect experiment. We further prove that the electric field toggles the system reversibly between a metallic and an insulating state with canted antiferromagnetism and an emergent anomalous Hall effect. This is achieved through the spin-orbit driven coupling of the electric field generated in an ionic liquid gate to the electronic structure, where the electric field controls the band structure rather than the usual band filling, thereby enabling electrical control of the effective role of electron correlations. The externally tunable antiferromagnetic insulator, rooted in the strong spin-orbit interaction of iridium, may inspire interesting applications in spintronics.
AB - SrIrO3 is a correlated semimetal with narrow t2g d-bands of strong mixed orbital character resulting from the interplay of the spin-orbit interaction due to heavy iridium atoms and the band folding induced by the lattice structure. In ultrathin layers, inversion symmetry breaking, occurring naturally due to the presence of the substrate, opens new orbital hopping channels, which in presence of spin-orbit interaction causes deep modifications in the electronic structure. Here, we show that in SrIrO3 ultrathin films the effect of inversion symmetry breaking on the band structure can be externally manipulated in a field effect experiment. We further prove that the electric field toggles the system reversibly between a metallic and an insulating state with canted antiferromagnetism and an emergent anomalous Hall effect. This is achieved through the spin-orbit driven coupling of the electric field generated in an ionic liquid gate to the electronic structure, where the electric field controls the band structure rather than the usual band filling, thereby enabling electrical control of the effective role of electron correlations. The externally tunable antiferromagnetic insulator, rooted in the strong spin-orbit interaction of iridium, may inspire interesting applications in spintronics.
UR - https://www.scopus.com/pages/publications/85160005332
UR - https://www.scopus.com/inward/citedby.url?scp=85160005332&partnerID=8YFLogxK
U2 - 10.1038/s43246-023-00362-7
DO - 10.1038/s43246-023-00362-7
M3 - Article
AN - SCOPUS:85160005332
SN - 2662-4443
VL - 4
JO - Communications Materials
JF - Communications Materials
IS - 1
M1 - 36
ER -