Atomic-scale observation and manipulation of plaquette antiferromagnetic order in iron-based superconductor
Seokhwan Choi, Won-Jun Jang, Jong Mok Ok, Hyun Woo Choi, Hyun-Jung, Lee, Se-Jong Kahng, Young Kuk, Ja-Yong Koo, SungBin Lee, Sang-Wook Cheong,, Yunkyu Bang, Jun Sung Kim, Jhinhwan Lee

TL;DR
This study visualizes and manipulates plaquette antiferromagnetic order at the atomic scale in an iron-based superconductor, challenging existing theories about magnetic order origins and their relation to superconductivity.
Contribution
It introduces a novel spin-polarized STM imaging mechanism to observe C4 symmetric magnetic domains and demonstrates control over domain wall dynamics, providing new insights into magnetic order in FeSCs.
Findings
Visualized C4 symmetric magnetic domains and phase walls.
Confirmed plaquette antiferromagnetic order consistent with Heisenberg exchange theory.
Demonstrated domain wall dynamics influenced by spin torque effects.
Abstract
The symmetry requirement and the origin of magnetic orders coexisting with superconductivity have been strongly debated issues of iron-based superconductors (FeSCs). Observation of C-symmetric antiferromagnetism in violation of the inter-band nesting condition of spin-density waves in superconducting ground state will require significant change in our understanding of the mechanism of FeSC. The superconducting material SrVOFeAs, a bulk version of monolayer FeSC in contact with a perovskite layer with its magnetism (T ~ 50 K) and superconductivity (T ~ 37 K) coexisting at parent state, has no reported structural orthorhombic distortion and thus makes a perfect system to look for theoretically expected C magnetisms. Based on variable temperature spin-polarized scanning tunneling microscopy (SPSTM) with newly discovered imaging mechanism that removes the static…
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Taxonomy
TopicsIron-based superconductors research · Physics of Superconductivity and Magnetism · Electronic and Structural Properties of Oxides
