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Coherency-broken Bragg filters: surpassing on-chip rejection limitations

Quantum Physics 2018-06-26 v1 Optics

Abstract

Selective on-chip optical filters with high rejection levels are key components for a wide range of advanced photonic circuits. However, maximum achievable rejection in state-of-the-art on-chip devices is seriously limited by phase errors arising from fabrication imperfections. Due to coherent interactions, unwanted phase-shifts result in detrimental destructive interferences that distort the filter response, whatever the chosen strategy (resonators, interferometers, Bragg filters, etc.). Here we propose and experimentally demonstrate a radically different approach to overcome this fundamental limitation, based on coherency-broken Bragg filters. We exploit non-coherent interaction among modal-engineered waveguide Bragg gratings separated by single-mode waveguides to yield effective cascading, even in the presence of fabrication errors. This technologically independent approach allows seamless combination of filter stages with moderate performance, providing a dramatic increase of on-chip rejection. Based on this concept, we experimentally demonstrate on-chip non-coherent cascading of Si Bragg filters with a record light rejection exceeding 80 dB in the C-band.

Keywords

Cite

@article{arxiv.1806.08833,
  title  = {Coherency-broken Bragg filters: surpassing on-chip rejection limitations},
  author = {D. Oser and F. Mazeas and X. Le Roux and D. Perez-Galacho and O. Alibart and S. Tanzilli and L. Labonte and D. Marris-Morini and L. Vivien and E. Cassan and C. Alonso-Ramos},
  journal= {arXiv preprint arXiv:1806.08833},
  year   = {2018}
}
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