Samanta Subhasis, Park Hwiwoo, Lee Chanhyeon, Jeon Sungmin, Cui Hengbo, Yao Yong-Xin, Hwang Jungseek, Choi Kwang-Yong, Kim Heung-Sik
Department of Semiconductor Physics and Institute of Quantum Convergence Technology, Kangwon National University, Chuncheon, 24341, Republic of Korea.
Center for Extreme Quantum Matter and Functionality, Sungkyunkwan University, Suwon, 16419, Republic of Korea.
Nat Commun. 2024 Jun 25;15(1):5376. doi: 10.1038/s41467-024-49674-3.
Kagome lattice has been actively studied for the possible realization of frustration-induced two-dimensional flat bands and a number of correlation-induced phases. Currently, the search for kagome systems with a nearly dispersionless flat band close to the Fermi level is ongoing. Here, by combining theoretical and experimental tools, we present ScMnAlSi as a novel realization of correlation-induced almost-flat bands in the kagome lattice in the vicinity of the Fermi level. Our magnetic susceptibility, Al nuclear magnetic resonance, transport, and optical conductivity measurements provide signatures of a correlated metallic phase with tantalizing ferromagnetic instability. Our dynamical mean-field calculations suggest that such ferromagnetic instability observed originates from the formation of nearly flat dispersions close to the Fermi level, where electron correlations induce strong orbital-selective renormalization and manifestation of the kagome-frustrated bands. In addition, a significant negative magnetoresistance signal is observed, which can be attributed to the suppression of flat-band-induced ferromagnetic fluctuation, which further supports the formation of flat bands in this compound. These findings broaden a new prospect to harness correlated topological phases via multiorbital correlations in 3d-based kagome systems.
Kagome晶格因其可能实现由阻挫诱导的二维平带以及多种关联诱导相而受到广泛研究。目前,人们正在寻找在费米能级附近具有近无色散平带的Kagome体系。在此,我们结合理论和实验工具,展示了ScMnAlSi是一种在费米能级附近的Kagome晶格中由关联诱导的近平带的新型实例。我们的磁化率、铝核磁共振、输运和光导率测量提供了具有诱人铁磁不稳定性的关联金属相的特征。我们的动态平均场计算表明,观察到的这种铁磁不稳定性源于费米能级附近近平色散的形成,其中电子关联诱导了强烈的轨道选择性重整化以及Kagome阻挫能带的表现。此外,还观察到显著的负磁阻信号,这可归因于平带诱导的铁磁涨落的抑制,这进一步支持了该化合物中平带的形成。这些发现为通过基于3d的Kagome体系中的多轨道关联来利用关联拓扑相开辟了新的前景。