论文标题
人工双螺旋用于磁性手性的几何控制
Artificial double-helix for geometrical control of magnetic chirality
论文作者
论文摘要
手性在自然界,从粒子物理学到DNA都起着重要作用,由于其解锁的科学和技术机会,它的控制是备受追捧的。对于磁性材料,旋转之间的手性相互作用促进了复杂的旋转磁性状态(例如天空般的形成),具有丰富的拓扑特性,并具有巨大的未来技术潜力。目前,手性磁性需要一组受限的天然材料或合成薄膜系统,以利用界面效应。在这里,使用最先进的纳米制作和磁X射线显微镜,我们通过纳米级的三维几何效应来证明复杂的手性自旋状态的印记。通过平衡人造铁磁双螺旋纳米结构中的偶极和交换相互作用,我们创建了具有明确定义的自旋手性的磁性域和域壁,仅由手性几何形状决定。我们进一步证明了通过局部接口相反手性的几何形状来创建约束3D自旋纹理和拓扑缺陷的能力。仅通过3D纳米模式创建手性旋转纹理的能力就可以对复杂拓扑磁状态的性质和位置进行精美的控制,这对于开发未来的超材料和手力提供了增强功能的设备非常重要。
Chirality plays a major role in nature, from particle physics to DNA, and its control is much sought-after due to the scientific and technological opportunities it unlocks. For magnetic materials, chiral interactions between spins promote the formation of sophisticated swirling magnetic states such as skyrmions, with rich topological properties and great potential for future technologies. Currently, chiral magnetism requires either a restricted group of natural materials or synthetic thin-film systems that exploit interfacial effects. Here, using state-of-the-art nanofabrication and magnetic X-ray microscopy, we demonstrate the imprinting of complex chiral spin states via three-dimensional geometric effects at the nanoscale. By balancing dipolar and exchange interactions in an artificial ferromagnetic double-helix nanostructure, we create magnetic domains and domain walls with a well-defined spin chirality, determined solely by the chiral geometry. We further demonstrate the ability to create confined 3D spin textures and topological defects by locally interfacing geometries of opposite chirality. The ability to create chiral spin textures via 3D nano-patterning alone enables exquisite control over the properties and location of complex topological magnetic states, of great importance for the development of future metamaterials and devices in which chirality provides enhanced functionality.