论文标题
MNSI中的磁分子轨道
Magnetic molecular orbitals in MnSi
论文作者
论文摘要
相互作用的旋转模型通常存在于磁离子上。超出离子图的建议并不常见,很少通过与微观理论结合直接观察来验证。在这里,使用非弹性中子散射研究巡回的近乎铁磁铁MNSI,我们发现该系统的基本磁单元是互连的,扩展的分子轨道,这些轨道由每个三个MN原子组成,而不是单个MN原子。通过从头算计算获得的磁性障碍轨道进一步证实了这一结果。它将离子图片与一个具体的示例进行了对比,并提出了自旋波的新型状态,其中波长与分子轨道的空间范围相当。我们的发现带来了重要的见解,不仅对MNSI的磁性,而且还带来了一系列磁性量子材料,其中结构对称性,电子巡回术和相关性共同起作用。
A large body of knowledge about magnetism is attained from models of interacting spins, which usually reside on magnetic ions. Proposals beyond the ionic picture are uncommon and seldom verified by direct observations in conjunction with microscopic theory. Here, using inelastic neutron scattering to study the itinerant near-ferromagnet MnSi, we find that the system's fundamental magnetic units are interconnected, extended molecular orbitals consisting of three Mn atoms each, rather than individual Mn atoms. This result is further corroborated by magnetic Wannier orbitals obtained by ab initio calculations. It contrasts the ionic picture with a concrete example, and presents a novel regime of the spin waves where the wavelength is comparable to the spatial extent of the molecular orbitals. Our discovery brings important insights into not only the magnetism of MnSi, but also a broad range of magnetic quantum materials where structural symmetry, electron itinerancy and correlations act in concert.