论文标题

在手性拓扑半学中平行自旋摩托锁

Parallel spin-momentum locking in a chiral topological semimetal

论文作者

Krieger, Jonas A., Stolz, Samuel, Robredo, Inigo, Manna, Kaustuv, McFarlane, Emily C., Date, Mihir, Guedes, Eduardo B., Dil, J. Hugo, Shekhar, Chandra, Borrmann, Horst, Yang, Qun, Lin, Mao, Strocov, Vladimir N., Caputo, Marco, Pal, Banabir, Watson, Matthew D., Kim, Timur K., Cacho, Cephise, Mazzola, Federico, Fujii, Jun, Vobornik, Ivana, Parkin, Stuart S. P., Bradlyn, Barry, Felser, Claudia, Vergniory, Maia G., Schröter, Niels B. M.

论文摘要

固体中的自旋摩托锁锁定描述了电子的自旋角动量与其在整个费米表面上的线性动量之间的方向关系。虽然已经研究了数十年的正交旋转摩托锁锁,例如Rashba自旋轨道耦合,并启发了大量应用,但其自然对应物,纯粹的平行自旋摩托锁定,在实验中仍然难以捉摸。最近,预计主持单个和多重带交叉的手性拓扑半学可以实现这种平行锁定。在这里,我们使用旋转和角度分辨的光电子光谱法来探测手性拓扑半学PTGA中多胎费用的自旋锁定,这是通过其拓扑fermi-arc arc表面状态的自旋纹理。我们发现,Fermi-Arcs的电子自旋指向其Fermi表面轮廓正交的,以实现接近散装多胎效率的投影,这与后者的平行自旋摩托锁定是一致的。我们预计,我们发现平行的自旋摩托孔锁定多因子费米子将导致在新型Spintronic设备中的手性拓扑半学的整合,并在这些材料中寻找依赖自旋依赖性的超导和磁性不稳定性的搜索。

Spin-momentum locking in solids describes a directional relationship between the electron's spin angular momentum and its linear momentum over the entire Fermi surface. While orthogonal spin-momentum locking, such as Rashba spin-orbit coupling, has been studied for decades and inspired a vast number of applications, its natural counterpart, the purely parallel spin-momentum locking, has remained elusive in experiments. Recently, chiral topological semimetals that host single- and multifold band crossings have been predicted to realize such parallel locking. Here, we use spin- and angle-resolved photoelectron spectroscopy to probe spin-momentum locking of a multifold fermion in the chiral topological semimetal PtGa via the spin-texture of its topological Fermi-arc surface states. We find that the electron spin of the Fermi-arcs points orthogonal to their Fermi surface contour for momenta close to the projection of the bulk multifold fermion, which is consistent with parallel spin-momentum locking of the latter. We anticipate that our discovery of parallel spin-momentum locking of multifold fermions will lead to the integration of chiral topological semimetals in novel spintronic devices, and the search for spin-dependent superconducting and magnetic instabilities in these materials.

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