Parity-time symmetry in wavelength space with spatial singularity
Lingzhi Li, Guangying Wang, Jiejun Zhang, Xinhuan Feng, Baiou Guan and, Jianping Yao

TL;DR
This paper proposes a novel implementation of parity-time (PT) symmetry in optical wavelength space using a spatial singularity, demonstrated through a PT-symmetric optoelectronic oscillator with improved stability and simplicity.
Contribution
The paper introduces a new approach to PT-symmetry in wavelength space with spatial singularity, enabling simpler, more stable photonic systems compared to traditional spatial configurations.
Findings
Successful demonstration of PT-symmetry in a wavelength-space optoelectronic oscillator
Achieved low phase noise of 129.3 dBc/Hz at 10 kHz offset
High sidemode suppression ratio of 66.22 dB
Abstract
Implementation of a parity-time (PT) symmetric microwave photonic system in the optical wavelength space with spatial singularity is proposed. In the proposed PT-symmetric microwave photonic system, the gain and loss modes are confined in a single spatial resonator, which is different from a conventional PT-symmetric system in which the two modes are localized in two physically separated resonators to form one-dimensional spatial potential symmetry as required by the simplest one-dimensional parity transformation. We show that PT-symmetry can be implemented between subspaces in non-spatial parameter spaces, in which the gain and loss modes can perfectly overlay spatially but are distinguishable in the designated parameter space. The resultant spatial singularity enables the possibility in implementing PT-symmetric systems with increased structural simplicity, integration density and…
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Taxonomy
TopicsQuantum Mechanics and Non-Hermitian Physics · Nonlinear Waves and Solitons · Nonlinear Photonic Systems
