Karnieli Aviv, Tsesses Shai, Bartal Guy, Arie Ady
School of Electrical Engineering, Fleischman Faculty of Engineering, Tel Aviv University, Tel Aviv, Israel.
Andrew and Erna Viterbi department of Electrical Engineering, Technion-Israel Institute of Technology, Haifa, Israel.
Nat Commun. 2021 Feb 17;12(1):1092. doi: 10.1038/s41467-021-21250-z.
Exploring material magnetization led to countless fundamental discoveries and applications, culminating in the field of spintronics. Recently, research effort in this field focused on magnetic skyrmions - topologically robust chiral magnetization textures, capable of storing information and routing spin currents via the topological Hall effect. In this article, we propose an optical system emulating any 2D spin transport phenomena with unprecedented controllability, by employing three-wave mixing in 3D nonlinear photonic crystals. Precise photonic crystal engineering, as well as active all-optical control, enable the realization of effective magnetization textures beyond the limits of thermodynamic stability in current materials. As a proof-of-concept, we theoretically design skyrmionic nonlinear photonic crystals with arbitrary topologies and propose an optical system exhibiting the topological Hall effect. Our work paves the way towards quantum spintronics simulations and novel optoelectronic applications inspired by spintronics, for both classical and quantum optical information processing.
对材料磁化的探索带来了无数重要发现及应用,最终促成了自旋电子学领域的诞生。近来,该领域的研究聚焦于磁斯格明子——具有拓扑稳定性的手性磁化纹理,能够通过拓扑霍尔效应存储信息并引导自旋电流。在本文中,我们提出一种光学系统,通过在三维非线性光子晶体中利用三波混频,以前所未有的可控性模拟任何二维自旋输运现象。精确的光子晶体工程以及主动全光控制,能够实现超越当前材料热力学稳定性极限的有效磁化纹理。作为概念验证,我们从理论上设计了具有任意拓扑结构的斯格明子非线性光子晶体,并提出了一种展现拓扑霍尔效应的光学系统。我们的工作为量子自旋电子学模拟以及受自旋电子学启发的新型光电子应用铺平了道路,可用于经典和量子光学信息处理。