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Phase Transitions of Dirac Electrons in Bismuth

机译:铋中狄拉克电子的相变

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The Dirac Hamiltonian, which successfully describes relativistic fermions, applies equally well to electrons in solids with linear energy dispersion, for example, in bismuth and graphene. A characteristic of these materials is that a magnetic field less than 10 tesla suffices to force the Dirac electrons into the lowest Landau level, with resultant strong enhancement of the Coulomb interaction energy. Moreover, the Dirac electrons usually come with multiple flavors or valley degeneracy. These ingredients favor transitions to a collective state with novel quantum properties in large field. By using torque magnetometry, we have investigated the magnetization of bismuth to fields of 31 tesla. We report the observation of sharp field-induced phase transitions into a state with striking magnetic anisotropy, consistent with the breaking of the threefold valley degeneracy.
机译:狄拉克·哈密顿量,成功地描述了相对论费米子,同样适用于线性能量分散的固体中的电子,例如铋和石墨烯。这些材料的特点是,小于10特斯拉的磁场足以迫使狄拉克电子进入最低的朗道能级,从而使库仑相互作用能得到极大增强。此外,狄拉克电子通常带有多种风味或谷值简并性。这些成分有利于在大视野中转变为具有新颖量子性质的集体状态。通过使用扭矩磁强计,我们研究了铋对31特斯拉磁场的磁化强度。我们报告了观察到的尖锐的磁场诱导的相转变为具有惊人的磁各向异性的状态,这与三重峰谷简并性的破坏是一致的。

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