Xu Jing, Chen Yuntian
Opt Express. 2015 Aug 24;23(17):22619-27. doi: 10.1364/OE.23.022619.
In the presence of loss and gain, the coupled mode equation on describing the mode hybridization of various waveguides or cavities, or cavities coupled to waveguides becomes intrinsically non-Hermitian. In such non-Hermitian waveguides, the standard coupled mode theory fails. We generalize the coupled mode theory with a properly defined inner product based on reaction conservation. We apply our theory to the non-Hermitian parity-time symmetric waveguides, and obtain excellent agreement with results obtained by finite element fullwave simulations. The theory presented here is typically formulated in space to study coupling between waveguides, which can be transformed into time domain by proper reformulation to study coupling between non-Hermitian resonators. Our theory has the strength of studying non-Hermitian optical systems with inclusion of the full vector fields, thus is useful to study and design non-Hermitian devices that support asymmetric and even nonreciprocal light propagations.
在存在增益和损耗的情况下,用于描述各种波导或腔体,或与波导耦合的腔体的模式杂化的耦合模方程本质上变得非厄米。在这种非厄米波导中,标准的耦合模理论失效。我们基于反应守恒通过适当定义内积来推广耦合模理论。我们将我们的理论应用于非厄米宇称 - 时间对称波导,并与有限元全波模拟得到的结果取得了很好的一致性。这里提出的理论通常在空间中进行公式化以研究波导之间的耦合,通过适当的重新公式化可以将其转换到时域来研究非厄米谐振器之间的耦合。我们的理论具有能够包含全矢量场来研究非厄米光学系统的优势,因此对于研究和设计支持不对称甚至非互易光传播的非厄米器件很有用。