Hajlaoui Mahdi, Wilfred D'Souza Sunil, Šmejkal Libor, Kriegner Dominik, Krizman Gauthier, Zakusylo Tetiana, Olszowska Natalia, Caha Ondřej, Michalička Jan, Sánchez-Barriga Jaime, Marmodoro Alberto, Výborný Karel, Ernst Arthur, Cinchetti Mirko, Minar Jan, Jungwirth Tomas, Springholz Gunther
Institute of Semiconductors and Solid-State Physics, Johannes Kepler University, Linz, 4040, Austria.
University of West Bohemia, New Technologies Research Center, Pilsen, 30100, Czech Republic.
Adv Mater. 2024 Aug;36(31):e2314076. doi: 10.1002/adma.202314076. Epub 2024 May 29.
Altermagnetic (AM) materials exhibit non-relativistic, momentum-dependent spin-split states, ushering in new opportunities for spin electronic devices. While the characteristics of spin-splitting are documented within the framework of the non-relativistic spin group symmetry, there is limited exploration of the inclusion of relativistic symmetry and its impact on the emergence of a novel spin-splitting in the band structure. This study delves into the intricate relativistic electronic structure of an AM material, α-MnTe. Employing temperature-dependent angle-resolved photoelectron spectroscopy across the AM phase transition, the emergence of a relativistic valence band splitting concurrent with the establishment of magnetic order is elucidated. This discovery is validated through disordered local moment calculations, modeling the influence of magnetic order on the electronic structure and confirming the magnetic origin of the observed splitting. The temperature-dependent splitting is ascribed to the advent of relativistic spin-splitting resulting from the strengthening of AM order in α-MnTe as the temperature decreases. This sheds light on a previously unexplored facet of this intriguing material.
交变磁(AM)材料呈现出非相对论性的、依赖动量的自旋分裂态,为自旋电子器件带来了新机遇。虽然自旋分裂的特性是在非相对论性自旋群对称性框架内记录的,但对于纳入相对论对称性及其对能带结构中新型自旋分裂出现的影响的探索却很有限。本研究深入探讨了一种AM材料α-MnTe的复杂相对论电子结构。通过在AM相变过程中使用温度相关的角分辨光电子能谱,阐明了与磁序建立同时出现的相对论价带分裂。这一发现通过无序局域矩计算得到验证,该计算模拟了磁序对电子结构的影响,并证实了观察到的分裂的磁起源。温度相关的分裂归因于随着温度降低α-MnTe中AM序增强而出现的相对论自旋分裂。这揭示了这种有趣材料此前未被探索的一个方面。