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Strongly Coupled Magnetic and Electronic Transitions in Multivalent Strontium Cobaltites

机译:多价锶钴矿中的强磁和电子跃迁

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The topotactic phase transition in SrCoO x (x?=?2.5–3.0) makes it possible to reversibly transit between the two distinct phases, i.e. the brownmillerite SrCoO2.5 that is a room-temperature antiferromagnetic insulator (AFM-I) and the perovskite SrCoO3 that is a ferromagnetic metal (FM-M), owing to their multiple valence states. For the intermediate x values, the two distinct phases are expected to strongly compete with each other. With oxidation of SrCoO2.5, however, it has been conjectured that the magnetic transition is decoupled to the electronic phase transition, i.e., the AFM-to-FM transition occurs before the insulator-to-metal transition (IMT), which is still controversial. Here, we bridge the gap between the two-phase transitions by density-functional theory calculations combined with optical spectroscopy. We confirm that the IMT actually occurs concomitantly with the FM transition near the oxygen content x?=?2.75. Strong charge-spin coupling drives the concurrent IMT and AFM-to-FM transition, which fosters the near room-T magnetic transition characteristic. Ultimately, our study demonstrates that SrCoO x is an intriguingly rare candidate for inducing coupled magnetic and electronic transition via fast and reversible redox reactions.
机译:SrCoO x(x?=?2.5–3.0)中的定势相变使得可以在两个不同的相之间进行可逆转换,即,作为室温反铁磁绝缘体(AFM-I)的褐铁矿SrCoO2.5和钙钛矿由于其多价态,是铁磁性金属(FM-M)的SrCoO3。对于中间的x值,两个截然不同的阶段有望相互竞争。然而,随着SrCoO2.5的氧化,人们推测磁转变与电子相转变是不相关的,即AFM-FM转变发生在绝缘体-金属转变(IMT)之前,IMT仍然是有争议的。在这里,我们通过密度泛函理论计算并结合光谱学来弥合两相转变之间的间隙。我们确认,IMT实际上与氧含量x?=?2.75附近的FM转变同时发生。强大的电荷自旋耦合驱动了同时的IMT和AFM到FM的转换,从而促进了接近室温的T磁转换特性。最终,我们的研究表明,SrCoO x是通过快速和可逆的氧化还原反应诱导磁和电子跃迁的一种罕见的候选物。

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