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Realizing spin Hamiltonians in nanoscale active photonic lattices

机译:在纳米级活性光子格子中实现自旋汉密尔顿人

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摘要

Spin models arise in the microscopic description of magnetic materials and have been recently used to map certain classes of optimization problems involving large degrees of freedom. In this regard, various optical implementations of such Hamiltonians have been demonstrated to quickly converge to the global minimum in the energy landscape. Yet, so far, an integrated nanophotonic platform capable of emulating complex magnetic materials is still missing. Here, we show that the cooperative interplay among vectorial electromagnetic modes in coupled metallic nanolasers can be utilized to implement certain types of spin Hamiltonians. Depending on the topology/geometry of the arrays, these structures can be governed by a classical XY Hamiltonian that exhibits ferromagnetic and antiferromagnetic couplings, as well as geometrical frustration. Our results pave the way towards a scalable nanophotonic platform to study spin exchange interactions and could address a variety of optimization problems.
机译:旋转模型在磁性材料的显微描述中产生,并且最近用于映射涉及大量自由度的某些类别的优化问题。在这方面,已经证明了这种哈密顿人的各种光学实现,以便在能量景观中快速收敛到全局最小值。然而,到目前为止,仍然缺少能够模拟复杂磁性材料的集成纳米光电平台。这里,我们表明,耦合金属纳米液体中的矢量电磁模式之间的协同相互作用可用于实现某些类型的旋转哈密塔尼人。根据阵列的拓扑/几何形状,这些结构可以由展示铁磁和反铁磁耦合的经典XY Hamiltonian,以及几何挫折。我们的结果铺平了往达可扩展的纳米光电平台,以研究自旋交换相互作用,可以解决各种优化问题。

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  • 来源
    《Nature Materials》 |2020年第7期|725-731|共7页
  • 作者单位

    CREOL The College of Optics and Photonics University of Central Florida Orlando FL USA;

    CREOL The College of Optics and Photonics University of Central Florida Orlando FL USA;

    Department of Electrical Engineering California Institute of Technology Pasadena CA USA;

    CREOL The College of Optics and Photonics University of Central Florida Orlando FL USA;

    CREOL The College of Optics and Photonics University of Central Florida Orlando FL USA Ming Hsieh Department of Electrical and Computer Engineering University of Southern California Los Angeles CA USA;

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