Litcius/Paper detail

Tuning magnetism and band topology through antisite defects in Sb-doped <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML"><mml:mrow><mml:msub><mml:mi>MnBi</mml:mi><mml:mn>4</mml:mn></mml:msub><mml:msub><mml:mi>Te</mml:mi><mml:mn>7</mml:mn></mml:msub></mml:mrow></mml:math>

Chaowei Hu, Shang‐Wei Lien, Erxi Feng, S. Mackey, Hung‐Ju Tien, I. I. Mazin, Huibo Cao, Tay‐Rong Chang, Ni Ni

2021Physical review. B./Physical review. B51 citationsDOIOpen Access PDF

Abstract

The fine control of magnetism and electronic structure in a magnetic topological insulator is crucial in order to realize various novel magnetic topological states including axion insulators, magnetic Weyl semimetals, Chern insulators, etc. Through crystal growth, transport, thermodynamic, neutron diffraction measurements, we show that under Sb doping the newly discovered intrinsic antiferromagnetic (AFM) topological insulator ${\mathrm{MnBi}}_{4}{\mathrm{Te}}_{7}$ evolves from AFM to ferromagnetic (FM) and then ferrimagnetic. We attribute this to the formation of ${\mathrm{Mn}}_{(\mathrm{Bi},\mathrm{Sb})}$ antisites upon doping, which results in additional Mn sublattices that modify the delicate interlayer magnetic interactions and cause the dominant Mn sublattice to go from AFM to FM. We further investigate the effect of antisites on the band topology using the first-principles calculations. Without considering antisites, the series evolves from AFM topological insulator ($x=0$) to FM axion insulators. In the exaggerated case of 16.7% of periodic antisites, the band topology is modified and a type-I magnetic Weyl semimetal phase can be realized at intermediate dopings. Therefore, this doping series provides a fruitful platform with continuously tunable magnetism and topology for investigating emergent phenomena, including quantum anomalous Hall effect, Fermi arc states, etc.

Topics & Concepts

Topological insulatorMagnetismAntiferromagnetismMaterials scienceFerrimagnetismAxionTopology (electrical circuits)Condensed matter physicsSemimetalFerromagnetismDopingPhysicsMagnetizationMagnetic fieldBand gapQuantum mechanicsDark matterCombinatoricsMathematicsParticle physicsTopological Materials and PhenomenaAdvanced Condensed Matter Physics2D Materials and Applications