Arbitrary Reflectionless Optical Routing via Non-Hermitian Zero-Index Networks
Yongxing Wang, Zehui Du, Zhenshuo Xu, Pei Xiao, Jizi Lin, Yufeng Zhang, Jie Luo

TL;DR
This paper introduces an analytical inverse-design method for creating arbitrary reflectionless optical routers using non-Hermitian zero-index networks, enabling precise control over scattering responses without iterative optimization.
Contribution
The authors develop a direct algebraic framework for inverse design of reflectionless optical routing, transforming the process into deterministic calculations instead of iterative optimization.
Findings
Designed unicast and multicast routers with full amplitude and phase control
Created coherent beam combiners and spatial mode demultiplexers
Demonstrated broad utility in four-port and six-port networks
Abstract
Optical routers are fundamental to photonic systems, but their performance is often limited by unwanted reflections and constrained functionalities. Existing design strategies generally lack complete control over reflectionless pathways and typically require computationally intensive iterative optimization. A general analytical framework for the inverse design of arbitrary reflectionless routing has remained unavailable. Here, we present an analytical inverse-design approach based on non-Hermitian zero-index networks, which enables arbitrary reflectionless routing for nearly any desired scattering response. By establishing a direct algebraic mapping between target scattering responses and the network's physical parameters, we transform the design process from iterative optimization into deterministic calculation. This approach enables the precise engineering of arbitrary reflectionless…
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Taxonomy
TopicsNeural Networks and Reservoir Computing · Quantum Mechanics and Non-Hermitian Physics · Photonic and Optical Devices
