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Supersymmetry-inspired non-Hermitian optical couplers. | LitMetric

Supersymmetry-inspired non-Hermitian optical couplers.

Sci Rep

Waves Group, Department of Engineering, University of Sannio, I-82100, Benevento, Italy.

Published: February 2015

AI Article Synopsis

  • Supersymmetry offers a systematic strategy for designing isospectral optical structures that can effectively control and eliminate specific modes in optical systems.
  • Recent developments extend this concept to non-Hermitian systems, which involve varying optical loss and gain, enabling greater flexibility in managing higher-order modes.
  • The paper focuses on non-Hermitian optical couplers aimed at selecting higher-order modes for applications like mode-division multiplexing, discussing challenges related to phase transitions in the coupling and suggesting strategies to mitigate these issues while maintaining practical gain levels.

Article Abstract

Supersymmetry has been shown to provide a systematic and effective framework for generating classes of isospectral optical structures featuring perfectly-phase-matched modes, with the exception of one (fundamental) mode which can be removed. More recently, this approach has been extended to non-Hermitian scenarios characterized by spatially-modulated distributions of optical loss and gain, in order to allow the removal of higher-order modes as well. In this paper, we apply this approach to the design of non-Hermitian optical couplers with higher-order mode-selection functionalities, with potential applications to mode-division multiplexing in optical links. In particular, we highlight the critical role of the coupling between non-Hermitian optical waveguides, which generally induces a phase transition to a complex eigenspectrum, thereby hindering the targeted mode-selection functionality. With the specific example of an optical coupler that selects the second-order mode of a given waveguide, we illustrate the aforementioned limitations and propose possible strategies to overcome them, bearing in mind the practical feasibility of the gain levels required.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4338421PMC
http://dx.doi.org/10.1038/srep08568DOI Listing

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