4.8 Article

Fast encirclement of an exceptional point for highly efficient and compact chiral mode converters

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NATURE COMMUNICATIONS
卷 13, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-022-29777-5

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资金

  1. National Natural Science Foundation of China [12074137]
  2. National Key Research and Development Project of China [2018YFB2200200, 2021YFB2801903]
  3. State Key Laboratory of Artificial Microstructure & Mesoscopic Physics (Peking University)
  4. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing (Wuhan University of Technology)
  5. Air Force Office of Scientific Research MURI program
  6. Simons Foundation

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The authors propose a highly efficient and compact chiral mode converter based on encircling exceptional points, enabling chiral mode switching with high transmission efficiency. The proposed scheme offers a promising approach for high-efficiency and highly integrated chiral mode switching in various practical applications.
Chiral mode converters are found in a wide range of practical applications in optics, but the previous proposals suffer from low efficiency and large device size. Here the authors propose a highly efficient and compact chiral mode converter based on encircling exceptional points along Hamiltonian parameter space boundary, relaxing the adiabaticity constraints. Exceptional points (EPs) are degeneracies at which two or more eigenvalues and eigenstates of a physical system coalesce. Dynamically encircling EPs by varying the parameters of a non-Hermitian system enables chiral mode switching, that is, the final state of the system upon a closed loop in parameter space depends on the encircling handedness. In conventional schemes, the parametric evolution during the encircling process has to be sufficiently slow to ensure adiabaticity. Here, we show that fast parametric evolution along the parameter space boundary of the system Hamiltonian can relax this constraint. The proposed scheme enables highly efficient transmission and more compact footprint for asymmetric mode converters. We experimentally demonstrate these principles in a 57 mu m-long double-coupled silicon waveguide system, enabling chiral mode switching with near-unity transmission efficiency at 1550 nm. This demonstration paves the way towards high-efficiency and highly integrated chiral mode switching for a wide range of practical applications.

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