Quantum Advancements in Neutron Scattering Reshape Spintronic Devices

M. E. Henderson, D. G. Cory, D. Sarenac, D. A. Pushin
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Abstract

Topological magnetism has sparked an unprecedented age in quantum technologies. Marked by twisted spin structures with exotic dynamical modes, topological magnets have motivated a new generation of spintronic devices which transcend the limits of conventional semiconductor-based electronics. While existing material probes have biased studies and device conceptualizations for thin samples in two dimensions, advancements in three-dimensional probing techniques using beams of neutrons, are transforming our understanding of topological and emergent physics to reimagine spintronic devices. Here, we review recent neutron scattering breakthroughs which harness quantum degrees of freedom to enable three-dimensional topological investigations of quantum materials. We discuss applications of structured and tomographic neutron scattering techniques to topological magnets, with particular emphasis on magnetic skyrmion systems and their inspired three-dimensional logic device infrastructures through novel multi-bit encoding and control schemes. SANS-based dynamic visualizations and coherent manipulations of three-dimensional topological qubits are proposed using electric field controls of depth-dependant helicities and spin-orbit tuning of the neutron beam. Together, these investigations uncover a new world of three-dimensional topological physics which enhances spintronic devices through a novel set of structures, dynamics, and controls, unique to three-dimensional systems.
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中子散射的量子进步重塑自旋电子器件
拓扑磁性为量子技术带来了一个前所未有的时代。拓扑磁体以具有奇异动力学模式的扭曲自旋结构为标志,推动了新一代自旋电子器件的发展,超越了传统半导体电子器件的极限。现有的材料探针偏重于二维样品的研究和器件构想,而使用中子束的三维探测技术的进步正在改变我们对拓扑和新兴物理学的理解,从而重新构想自旋电子器件。在此,我们将介绍中子散射的最新突破,这些突破利用量子自由度实现了量子材料的三维拓扑研究。我们讨论了结构和层析中子散射技术在拓扑磁体中的应用,特别强调了磁性天幕系统及其通过新颖的多位编码和控制方案激发的三维逻辑器件基础结构。这些研究共同揭示了三维拓扑物理学的新世界,它通过三维系统特有的一系列新型结构、动力学和控制来增强自旋电子器件。
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