论文标题

KagoméFeromagnetFe3Sn2的区域中心电子口袋中的异常准颗粒

Anomalous quasiparticles in the zone center electron pocket of the kagomé ferromagnet Fe3Sn2

论文作者

Ekahana, Sandy Adhitia, Soh, Y., Tamai, Anna, Gosálbez-Martínez, Daniel, Yao, Mengyu, Hunter, Andrew, Fan, Wenhui, Wang, Yihao, Li, Junbo, Kleibert, Armin, Vaz, C. A. F., Ma, Junzhang, Xiong, Yimin, Yazyev, Oleg V., Baumberger, Felix, Shi, Ming, Aeppli, Gabriel

论文摘要

铁磁金属FE3SN2是一种含有kagome双层和具有特殊磁性和电子传输的材料。尽管对FE3SN2产生了广泛的兴趣,晶体孪生,将表面与散装状态区分开困难,并且一个大型单元电池必须阻止基于同步加速器的光谱观察到对FERMI表面附近尖锐的Quasiparticles的光谱观察,这可能负责低于低温的材料,这可能负责。在这里,我们报告了基于微心重点激光的角度分辨光发射光谱(Micro-arpes),该光谱光谱(Micro-arpes)提供了对此类准粒子的首次观察。高空间分辨率允许隔离检查单个晶体双胞胎结构域,从而在布里渊区(BZ)中心发现了三个倍的对称电子口袋,不预测早期的紧密结合描述,而与密度功能理论(DFT)一致,这也具有Weyl Nodes。这些口袋中的准粒子具有非常长的平均自由路径,其费米表面积与报道的量子振荡一致。然而,与此同时,最佳定义的费米表面在低温下降低,而准粒子通常是边缘的,因为它们的波长不确定性是从费米载体偏离速率的偏差。我们将强烈的电子电子相互作用的这些表现归因于我们DFT预测的平坦谱带,以位于该实验中看到的分散带上方。因此,除了证明双胞胎平均对带结构的ARPES测量的影响外,我们的实验还显示了当前金属Kagome Ferromagnets的当前理论所不明的多体物理学。

One material containing kagome bilayers and featuring both exceptional magnetism and electron transport is the ferromagnetic metal Fe3Sn2. Notwithstanding the widespread interest in Fe3Sn2, crystal twinning, difficulties in distinguishing surface from bulk states, and a large unit cell have until now prevented the synchrotron-based spectroscopic observation of sharply resolved quasiparticles near the Fermi surface which could be responsible for the anomalous properties appearing at low temperatures for the material. Here we report microfocused laser-based angle-resolved photoemission spectroscopy (micro-ARPES), which offers the first look at such quasiparticles. The high spatial resolution allows individual crystal twin domains to be examined in isolation, resulting in the discovery of three-fold symmetric electron pockets at the Brillouin zone (BZ) center, not predicted by early tight-binding descriptions but in agreement with density functional theory (DFT) calculations, which also feature Weyl nodes. The quasiparticles in these pockets have remarkably long mean free paths, and their Fermi surface area is consistent with reported quantum oscillations. At the same time, though, the best-defined Fermi surface is reduced at low temperature, and the quasiparticles generally are marginal in the sense that their wavelength uncertainty is of order the deviation of the quasiparticle wavelength from the Fermi vector. We attribute these manifestations of strong electron-electron interactions to a flat band predicted by our DFT to lie just above the dispersive bands seen in this experiment. Thus, beyond demonstrating the impact of twin averaging for ARPES measurements of band structures, our experiments reveal many-body physics unaccounted for by current theories of metallic kagome ferromagnets.

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