4.8 Article

Annihilation of exceptional points from different Dirac valleys in a 2D photonic system

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NATURE COMMUNICATIONS
卷 13, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-022-33001-9

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资金

  1. National Science Centre [2019/35/B/ST3/04147, 2019/33/B/ST5/02658, 2018/31/N/ST3/03046, 2017/27/B/ST3/00271]
  2. Ministry of National Defense Republic of Poland Program - Research Grant MUT Project [13-995]
  3. MUT University grant (UGB) for the Laboratory of Crystals Physics and Technology for year 2021
  4. European Union's Horizon 2020 program, through a FET Open research and innovation action [899141, 964770]
  5. ANR Labex Ganex [ANR-11-LABX-0014]
  6. ANR program Investissements d'Avenir through the IDEX-ISITE initiative [16-IDEX-0001 (CAP 20-25)]
  7. UK's Engineering and Physical Sciences Research Council [EP/M025330/1]
  8. RFBR [20-52-12026]
  9. DFG [20-52-12026]
  10. [20-02-00919]

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The authors experimentally demonstrate the annihilation of exceptional points (EPs) from different Dirac points (valleys) by increasing non-Hermiticity in a liquid crystal microcavity platform. The platform utilizes voltage-controlled birefringence and TE-TM photonic spin-orbit-coupling, with non-Hermiticity provided by polarization-dependent losses. This study has significant implications for the field of non-Hermitian valley-physics.
The authors study a liquid crystal microcavity with polarization-dependent absorption, a source of non-Hermiticity. The transition in the Hermitian topology of the spin-orbit coupling makes possible the annihilation of exceptional points. Topological physics relies on Hamiltonian's eigenstate singularities carrying topological charges, such as Dirac points, and - in non-Hermitian systems - exceptional points (EPs), lines or surfaces. So far, the reported non-Hermitian topological transitions were related to the creation of a pair of EPs connected by a Fermi arc out of a single Dirac point by increasing non-Hermiticity. Such EPs can annihilate by reducing non-Hermiticity. Here, we demonstrate experimentally that an increase of non-Hermiticity can lead to the annihilation of EPs issued from different Dirac points (valleys). The studied platform is a liquid crystal microcavity with voltage-controlled birefringence and TE-TM photonic spin-orbit-coupling. Non-Hermiticity is provided by polarization-dependent losses. By increasing the non-Hermiticity degree, we control the position of the EPs. After the intervalley annihilation, the system becomes free of any band singularity. Our results open the field of non-Hermitian valley-physics and illustrate connections between Hermitian topology and non-Hermitian phase transitions.

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