Pylypovskyi Oleksandr V, Kononenko Denys Y, Yershov Kostiantyn V, Rößler Ulrich K, Tomilo Artem V, Fassbender Jürgen, van den Brink Jeroen, Makarov Denys, Sheka Denis D
Helmholtz-Zentrum Dresden-Rossendorf e.V., Institute of Ion Beam Physics and Materials Research, Dresden 01328, Germany.
Taras Shevchenko National University of Kyiv, Kyiv 01601, Ukraine.
Nano Lett. 2020 Nov 11;20(11):8157-8162. doi: 10.1021/acs.nanolett.0c03246. Epub 2020 Oct 20.
Antiferromagnets host exotic quasiparticles, support high frequency excitations and are key enablers of the prospective spintronic and spin-orbitronic technologies. Here, we propose a concept of a curvilinear antiferromagnetism where material responses can be tailored by a geometrical curvature without the need to adjust material parameters. We show that an intrinsically achiral one-dimensional (1D) curvilinear antiferromagnet behaves as a chiral helimagnet with geometrically tunable Dzyaloshinskii-Moriya interaction (DMI) and orientation of the Néel vector. The curvature-induced DMI results in the hybridization of spin wave modes and enables a geometrically driven local minimum of the low-frequency branch. This positions curvilinear 1D antiferromagnets as a novel platform for the realization of geometrically tunable chiral antiferromagnets for antiferromagnetic spin-orbitronics and fundamental discoveries in the formation of coherent magnon condensates in the momentum space.
反铁磁体包含奇异的准粒子,支持高频激发,并且是未来自旋电子学和自旋轨道电子学技术的关键推动者。在此,我们提出一种曲线反铁磁性的概念,即无需调整材料参数,材料响应就可以通过几何曲率来定制。我们表明,一种本征非手性的一维(1D)曲线反铁磁体表现为具有几何可调的Dzyaloshinskii-Moriya相互作用(DMI)和奈尔矢量取向的手性螺旋磁体。曲率诱导的DMI导致自旋波模式的杂化,并实现低频分支的几何驱动局部最小值。这使曲线1D反铁磁体成为实现用于反铁磁自旋轨道电子学的几何可调手性反铁磁体以及在动量空间中形成相干磁振子凝聚体的基础发现的新型平台。