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Symmetry induced selective excitation of topological states in SSH waveguide arrays

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arxiv 2211.06228 v2 pith:OUNSWX5Q submitted 2022-11-11 physics.optics cond-mat.other

Symmetry induced selective excitation of topological states in SSH waveguide arrays

classification physics.optics cond-mat.other
keywords topologicalsymmetrictzmsantisymmetricphotonicselectivetransitionwaveguide
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The investigation of topological state transition in carefully designed photonic lattices is of high interest for fundamental research, as well as for applied studies such as manipulating light flow in on-chip photonic systems. Here, we report on topological phase transition between symmetric topological zero modes (TZM) and antisymmetric TZMs in Su-Schrieffer-Heeger (SSH) mirror symmetric waveguides. The transition of TZMs is realized by adjusting the coupling ratio between neighboring waveguide pairs, which is enabled by selective modulation of the refractive index in the waveguide gaps. Bi-directional topological transitions between symmetric and antisymmetric TZMs can be achieved with our proposed switching strategy. Selective excitation of topological edge mode is demonstrated owing to the symmetry characteristics of the TZMs. The flexible manipulation of topological states is promising for on-chip light flow control and may spark further investigations on symmetric/antisymmetric TZM transitions in other photonic topological frameworks.

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