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Analogue of dynamic Hall effect in cavity magnon polariton system and coherently controlled logic device

机译:腔磁振子极化系统中动态霍尔效应的模拟及相干控制逻辑器件

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摘要

Cavity magnon polaritons are mixed quasiparticles that arise from the strong coupling between cavity photons and quantized magnons. Combining high-speed photons with long-coherence-time magnons, such polaritons promise to be a potential candidate for quantum information processing. For harnessing coherent information contained in spatially distributed polariton states, it is highly desirable to manipulate cavity magnon polaritons in a two-dimensional system. Here, we demonstrate that tunable cavity magnon polariton transport can be achieved by strongly coupling magnons to microwave photons in a cross-cavity. An analog to the dynamic Hall effect has been demonstrated in a planar cavity spintronic device, where the propagation of cavity-magnon-polaritons is deflected transversally due to hybrid magnon-photon dynamics. Implementing this device as a Michelson-type interferometer using the coherent nature of the dynamic Hall and longitudinal signals, we have developed a proof-of-principle logic device to control the amplitude of cavity-magnon-polaritons by encoding the input microwave phase.
机译:腔磁振子极化子是混合的准粒子,它们是由腔光子和量化的磁振子之间的强耦合产生的。这种极化子结合了高速光子和长相干时间的磁振子,有望成为量子信息处理的潜在候选者。为了利用空间分布的极化子状态中包含的相干信息,非常需要在二维系统中操纵腔磁振子极化子。在这里,我们证明了可调谐腔磁振子的极化传输可以通过将磁振子与交叉腔中的微波光子强耦合来实现。在平面腔自旋电子器件中已经证明了动态霍尔效应的类似物,在该器件中,由于混合的磁振子-光子动力学,腔-磁振子-极化子的传播被横向偏转。利用动态霍尔信号和纵向信号的相干特性将该设备实现为迈克尔逊型干涉仪,我们开发了一种原理证明逻辑设备,可通过对输入微波相位进行编码来控制腔磁非极化子的幅度。

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