Zhao Xiaoguang, Wu Ke, Chen Chunxu, Bifano Thomas G, Anderson Stephan W, Zhang Xin
Department of Mechanical Engineering Boston University Boston MA 02215 USA.
Department of Radiology Boston University Medical Campus Boston MA 02118 USA.
Adv Sci (Weinh). 2020 Jul 23;7(19):2001443. doi: 10.1002/advs.202001443. eCollection 2020 Oct.
Breaking Lorentz reciprocity is fundamental to an array of functional radiofrequency (RF) and optical devices, such as isolators and circulators. The application of external excitation, such as magnetic fields and spatial-temporal modulation, has been employed to achieve nonreciprocal responses. Alternatively, nonlinear effects may also be employed to break reciprocity in a completely passive fashion. Herein, a coupled system comprised of linear and nonlinear meta-atoms that achieves nonreciprocity based on the coupling and frequency detuning of its constituent meta-atoms is presented. An analytical model is developed based on the coupled mode theory (CMT) in order to design and optimize the nonreciprocal meta-atoms in this coupled system. Experimental demonstration of an RF isolator is performed, and the contrast between forward and backward propagation approximates 20 dB. Importantly, the use of the CMT model developed herein enables a generalizable capacity to predict the limitations of nonlinearity-based nonreciprocity, thereby facilitating the development of novel approaches to breaking Lorentz reciprocity. The CMT model and implementation scheme presented in this work may be deployed in a wide range of applications, including integrated photonic circuits, optical metamaterials, and metasurfaces, among others.
打破洛伦兹互易性是一系列功能性射频(RF)和光学器件(如隔离器和环行器)的基础。外部激励(如磁场和时空调制)的应用已被用于实现非互易响应。另外,非线性效应也可用于以完全被动的方式打破互易性。在此,提出了一种由线性和非线性元原子组成的耦合系统,该系统基于其组成元原子的耦合和频率失谐实现非互易性。基于耦合模理论(CMT)开发了一个分析模型,以设计和优化该耦合系统中的非互易元原子。进行了射频隔离器的实验演示,正向和反向传播之间的对比度约为20 dB。重要的是,本文开发的CMT模型的使用能够普遍预测基于非线性的非互易性的局限性,从而促进开发打破洛伦兹互易性的新方法。这项工作中提出的CMT模型和实施方案可部署在广泛的应用中,包括集成光子电路、光学超材料和超表面等。