4.7 Article

Tailoring topological edge states with photonic crystal nanobeam cavities

期刊

SCIENTIFIC REPORTS
卷 11, 期 1, 页码 -

出版社

NATURE RESEARCH
DOI: 10.1038/s41598-020-79915-6

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资金

  1. SCW projects
  2. Ser Cymru II Rising Star Fellowship [80762-CU145]
  3. European Regional Development Fund (ERDF) via the Welsh Government

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In this study, a photonic topological insulator strategy based on SSH photonic crystal nanobeam cavities is developed to tailor TESs by manipulating mode coupling in a two-dimensional manner. It is revealed that hole-array based nanobeams in a dielectric membrane can selectively tailor single or double TESs in the telecommunication region by controlling the coupling strength of the adjacent SSH nanobeams in both transverse and axial directions. This finding provides an additional degree of freedom in exploiting the SSH model for integrated topological photonic devices and functionalities on established photonic crystal nanobeam cavity platforms.
The realization of topological edge states (TESs) in photonic systems has provided unprecedented opportunities for manipulating light in novel manners. The Su-Schrieffer-Heeger (SSH) model has recently gained significant attention and has been exploited in a wide range of photonic platforms to create TESs. We develop a photonic topological insulator strategy based on SSH photonic crystal nanobeam cavities. In contrast to the conventional photonic SSH schemes which are based on alternately tuned coupling strength in one-dimensional lattice, our proposal provides higher flexibility and allows tailoring TESs by manipulating mode coupling in a two-dimensional manner. We reveal that the proposed hole-array based nanobeams in a dielectric membrane can selectively tailor single or double TESs in the telecommunication region by controlling the coupling strength of the adjacent SSH nanobeams in both transverse and axial directions. Our finding provides an additional degree of freedom in exploiting the SSH model for integrated topological photonic devices and functionalities based on the well-established photonic crystal nanobeam cavity platforms.

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