Origin of the Anomalous Electrical Transport Behavior in Fe-Intercalated Weyl Semimetal T d -MoTe 2
Weyl semimetal T -MoTe has recently attracted much attention due to its intriguing electronic properties and potential applications in spintronics. Here, Fe-intercalated T -Fe MoTe single crystals (0 < x < 0.15 ) are grown successfully. The electrical and thermoelectric transport results consi...
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Veröffentlicht in: | Advanced materials (Weinheim) 2023-04, Vol.35 (16), p.e2208800 |
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Hauptverfasser: | , , , , , , , , , , , , |
Format: | Artikel |
Sprache: | eng |
Online-Zugang: | Volltext |
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Zusammenfassung: | Weyl semimetal T
-MoTe
has recently attracted much attention due to its intriguing electronic properties and potential applications in spintronics. Here, Fe-intercalated T
-Fe
MoTe
single crystals (0 < x < 0.15 ) are grown successfully. The electrical and thermoelectric transport results consistently demonstrate that the phase transition temperature T
is gradually suppressed with increasing x. Theoretical calculation suggests that the increased energy of the T
phase, enhanced transition barrier, and more occupied bands in 1T' phase is responsible for the suppression in T
. In addition, a ρ
-lnT behavior induced by Kondo effect is observed with x ≥ 0.08, due to the coupling between conduction carriers and the local magnetic moments of intercalated Fe atoms. For T
-Fe
MoTe
, a spin-glass transition occurs at ≈10 K. The calculated band structure of T
-Fe
MoTe
shows that two flat bands exist near the Fermi level, which are mainly contributed by the d
and
orbitals of the Fe atoms. Finally, the electronic phase diagram of T
-Fe
MoTe
is established for the first time. This work provides a new route to control the structural instability and explore exotic electronic states for transition-metal dichalcogenides. |
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ISSN: | 0935-9648 1521-4095 |
DOI: | 10.1002/adma.202208800 |