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October 3, 2025Journal of Physics Photonics4 citationsOpen Access

Unraveling the ultra-broadband beam splitter based on parallel coupled waveguides

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SCSheng Hsiung Chang

Key Points

  • The ultra-broadband beam splitter achieves a 1dB bandwidth of 285 nm, spanning from 1418 nm to 1703 nm.
  • Field distributions reveal a recoupling zone that enhances operational bandwidth and efficiency.
  • This design employs effective medium and finite-difference time-domain methods for analysis.
  • Integration into silicon photonic circuits may facilitate advancements in long-haul optical communication.

Abstract

Abstract An ultra-broadband beam splitter is theoretically realized using a directional parallel-cascaded coupled-waveguide structure, which is designed and investigated with the effective medium method and finite-difference time-domain method. The 1dB bandwidth is 285 nm which is ranging from 1418 nm to 1703 nm, thereby covering the optical window for long-haul communication. The electric field distributions show that there is a recoupling zone and thereby resulting in the ultra-broadband operation. The proposed beam splitter can be naturally integrated into the silicon photonic integrated circuits, thereby facilitating the applications of silicon-on-insulator waveguides.

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Cite This Study

Sheng Hsiung Chang (2025) studied this question.

synapsesocial.com/papers/68e034f7f0e39f13e7fa3050https://doi.org/10.1088/2515-7647/ae0ee6
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