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Nonreciprocity Based on Nonlinear Resonances

机译:基于非线性共振的不可逆性

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Breaking reciprocity is fundamentally important for the protection of sources from incoming signals and to route signals traveling in opposite directions asymmetrically. Nonreciprocal devices are usually realized through certain types of magnetic materials, such as ferrites, under biasing with a static magnetic field, but recently, there has also been interest in magnetless approaches, including spatiotemporal modulation and nonlinear effects. Here, we provide an overview of nonreciprocal devices realized through nonlinearities, which have the advantage of not requiring any sort of bias and therefore, being fully passive. We explain the operation principle of such devices focusing on the most common type, nonlinear isolators based on nonlinear Fano resonators. We show that, despite being able to achieve high isolation, these structures are subject to a tradeoff between forward transmission and isolation power range stemming from time-reversal symmetry. Next, we show how this tradeoff can be overcome in structures comprising multiple nonlinear resonators and provide an example at microwave frequencies. Finally, we discuss the limitations imposed by thermodynamics on the operation of nonlinear isolators when they are simultaneously excited from both sides, and we envision practical operations in which nonlinear isolators can be fundamentally useful.
机译:互易性的突破对于保护信号源免受传入信号的侵害以及使信号沿非对称方向反向传播至关重要。不可逆设备通常是通过某些类型的磁性材料(例如铁氧体)在静态磁场偏置下实现的,但是最近,人们对无磁方法也产生了兴趣,包括时空调制和非线性效应。在这里,我们提供了通过非线性实现的不可逆设备的概述,这些设备具有不需要任何偏置,因此完全无源的优点。我们将重点介绍基于非线性Fano谐振器的最常见类型的非线性隔离器的此类器件的工作原理。我们表明,尽管能够实现高隔离度,但这些结构仍要在正向传输与源于时间反转对称性的隔离功率范围之间进行权衡。接下来,我们展示如何在包含多个非线性谐振器的结构中克服这种折衷,并提供微波频率的示例。最后,我们讨论了热力学对非线性隔离器从两侧同时受激时的作用所施加的限制,并且我们设想了非线性隔离器可以从根本上有用的实际操作。

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