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Topological phases of driven-dissipative lattices: non-Hermitian physics and experimental implementations

ORAL

Abstract



We show that a system of coupled photonic or phononic modes with parametric couplings displays an exciting dissipative topological phase diagram. We define a winding number that identifies non-trivial topological phases in which the system behaves as a directional amplifier. Our theoretical framework relies on the singular value decomposition of the non-Hermitian coupling matrix. In our model, zero-singular modes are the analog of zero-energy states in topological insulator theory. Such zero-singular modes dominate the Green’s function of the system, leading to a directional amplification mechanism. Our work reveals a connection between topological insulator theory, non-Hermitian physics and directional amplification. Our ideas can be implemented with a variety of physical setups, including superconducting circuits, trapped ions and optomechanical systems. We present several schemes for such experimental implementation that rely on periodically driving boson local frequencies or, alternatively, by using Kerr-nonlinearities in a four-wave mixing scheme.

Publication: Non-Hermitian topological phases in traveling-wave parametric amplifiers<br>Á Gómez-León, T Ramos, A González-Tudela, D Porras<br>arXiv preprint arXiv:2207.13715

Presenters

  • Diego Porras

    Consejo Superior de Investigaciones Cien, Institute of Fundamental Physics, CSIC

Authors

  • Diego Porras

    Consejo Superior de Investigaciones Cien, Institute of Fundamental Physics, CSIC

  • Tomas Ramos

    IFF-CSIC, Madrid, Consejo Superior de Investigaciones Cien

  • Alejandro Gonzalez-Tudela

    Instituto de Física Fundamental-CSIC

  • Diego Porras

    Consejo Superior de Investigaciones Cien, Institute of Fundamental Physics, CSIC