4.6 Article

Light-matter interactions near photonic Weyl points

期刊

PHYSICAL REVIEW A
卷 103, 期 3, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.103.033511

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资金

  1. CSIC Research Platform on Quantum Technologies [PTI-001]
  2. MCIU/AEI/FEDER, EU [PGC2018-094792-B-100]
  3. Spanish Ministry for Science, Innovation, and Universities [RTI2018-098452-B-I00]
  4. Maria de Maeztu programme for Units of Excellence in RD [MDM-2014-0377, CEX2018-000805-M]
  5. FPU [AP-201802748]

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The study focuses on the quantum optical consequences of Weyl photons, showing asymmetric dynamical behaviors and highly collimated emission patterns under different detunings. Additionally, incorporating staggered mass and hopping terms in the bath Hamiltonian enriches the observed phenomenology and increases the tunability of the interaction. Finally, conditions for a valid effective interacting spin model description in the case of two emitters are derived by analyzing the competition between coherent and dissipative components of the dynamics.
Weyl photons appear when two three-dimensional photonic bands with linear dispersion are degenerate at a single momentum point, labeled as Weyl point. These points have remarkable properties such as being robust topological monopoles of Berry curvature as well as an associated vanishing density of states. In this work, we report on a systematic theoretical study of the quantum optical consequences of such Weyl photons. First, we analyze the dynamics of a single quantum emitter coupled to a Weyl photonic bath as a function of its detuning with respect to the Weyl point and study the corrresponding emission patterns, using both perturbative and exact treatments. Our calculations show an asymmetric dynamical behavior when the emitter is detuned away from the Weyl frequency, as well as different regimes of highly collimated emission, which ultimately translate in a variety of directional collective decays. Besides, we find that the incorporation of staggered mass and hopping terms in the bath Hamiltonian both enriches the observed phenomenology and increases the tunability of the interaction. Finally, we analyze the competition between the coherent and dissipative components of the dynamics for the case of two emitters and derive the conditions under which an effective interacting spin model description is valid.

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