4.2 Article

Floquet π mode engineering in non-Hermitian waveguide lattices

期刊

PHYSICAL REVIEW RESEARCH
卷 3, 期 2, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevResearch.3.023211

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资金

  1. National Key R&D Program of China [2017YFA0303701, 2016YFA0202103]
  2. National Natural Science Foundation of China [91850204, 11674167]
  3. Dengfeng Project B of Nanjing University

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Recent research has shown the capability of non-Hermiticity in engineering topological states, but the interplay between Floquet topological phases and non-Hermiticity remains unclear. The study reveals that non-Hermitian modulation can induce phase transitions between trivial and nontrivial topological Floquet states, and experimentally verifies this phenomenon on the silicon waveguide platform.
Floquet topological systems exhibit rich physics associated with quasienergy band structures and new topological states; nevertheless, they are usually explored in Hermitian systems. Recent studies have shown the capability of non-Hermiticity in engineering topological states, while the interplay of Floquet topological phases and non-Hermiticity remains unclear. Here, we reveal that the non-Hermitian modulation can induce the phase transitions between trivial and nontrivial topological Floquet states. Our study theoretically predicts that the non-Hermitian modulation can create a Floquet pi mode in an originally topological trivial system according to the reopening of quasienergy band gap (i.e., the pi gap), which is well confirmed experimentally in the silicon waveguide platform. Our approach shows the powerful capability of non-Hermitian modulation in engineering topological modes in Floquet photonics systems and would inspire different possibilities in optical field manipulation in open systems.

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