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Showing 1–3 of 3 results for author: Hedir, M

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  1. arXiv:2512.09388  [pdf, ps, other

    physics.optics

    Twisted light from topological chiral exceptional points in a nanolaser array

    Authors: Kaiwen Ji, Melissa Hedir, Qi Zhong, Ramy El-Ganainy, Alejandro M. Yacomotti, Li Ge

    Abstract: We propose and experimentally demonstrate an orbital angular momentum (OAM) nanolaser array arranged in a ring geometry on an InP-based photonic crystal membrane. The device realizes a non-Hermitian extension of the Rice-Mele model, featuring alternating coupling strengths and imaginary on-site detunings. This configuration supports a symmetry-protected zero mode stabilized by non-Hermitian partic… ▽ More

    Submitted 10 December, 2025; originally announced December 2025.

  2. arXiv:2302.01809  [pdf, other

    physics.optics quant-ph

    Non-Hermitian zero mode laser in a nanophotonic trimer

    Authors: Kaiwen Ji, Bruno Garbin, Melissa Hedir, Juan A. Levenson, Alejandro Yacomotti

    Abstract: Symmetry-protected zero modes in arrays of coupled optical elements have attracted considerable attention because they are expected to be robust against coupling disorders. In the Hermitian limit, zero modes are dark ones, i.e. the intensity in one sublattice vanishes; yet, in a non-Hermitian counterpart, zero modes can be bright and feature π/2 phase difference between sublattices. In this work,… ▽ More

    Submitted 3 February, 2023; originally announced February 2023.

    Comments: 5 pages, 4 figures

    Journal ref: Phys. Rev. A 107, L061503 (2023)

  3. arXiv:2108.09672  [pdf, other

    physics.optics quant-ph

    Direct observation of zero modes in a non-Hermitian nanocavity array

    Authors: Flore Hentinger, Melissa Hedir, Bruno Garbin, Mathias Marconi, Li Ge, Fabrice Raineri, Ariel Levenson, Alejandro M. Yacomotti

    Abstract: Zero modes are symmetry protected ones whose energy eigenvalues have zero real parts. In Hermitian arrays, they arise as a consequence of the sublattice symmetry, implying that they are dark modes. In non-Hermitian systems, that naturally emerge in gain/loss optical cavities, particle-hole symmetry prevails instead; the resulting zero modes are no longer dark but feature $π/2$ phase jumps between… ▽ More

    Submitted 22 August, 2021; originally announced August 2021.

    Comments: 10 pages, 5 figures