Cavity embedding is an emerging paradigm for the control of quantum matter, offering avenues to manipulate electronic states and potentially drive topological phase transitions. In this work, we address the stability of a onedimensional topological superconducting phase to the vacuum quantum fluctuations brought by a global cavity mode. By employing a quasiadiabatic analytical approach completed by density matrix renormalization group calculations, we show that the Majorana end modes evolve into composite polaritonic modes while maintaining the topological order intact and robust to disorder. These Majorana polaritons keep their non-Abelian exchange properties and protect a twofold exponentially degenerate ground state for an open chain. They become, however, weak edge modes in the sense that they no longer commute with the full Hamiltonian and protect the exponential degeneracy only in the ground-state manifold.
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Univ Paris 07, Lab Mat & Phenomenes Quant, F-75103 Paris, France
CNRS, UMR 7162, F-75103 Paris, FranceUniv Paris 07, Lab Mat & Phenomenes Quant, F-75103 Paris, France
Sapienza, L.
Vasanelli, A.
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Univ Paris 07, Lab Mat & Phenomenes Quant, F-75103 Paris, France
CNRS, UMR 7162, F-75103 Paris, FranceUniv Paris 07, Lab Mat & Phenomenes Quant, F-75103 Paris, France
Vasanelli, A.
Colombelli, R.
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Univ Paris 11, CNRS, UMR 8622, Inst Elect Fondamentale, F-91405 Orsay, FranceUniv Paris 07, Lab Mat & Phenomenes Quant, F-75103 Paris, France
Colombelli, R.
Ciuti, C.
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Univ Paris 07, Lab Mat & Phenomenes Quant, F-75103 Paris, France
CNRS, UMR 7162, F-75103 Paris, FranceUniv Paris 07, Lab Mat & Phenomenes Quant, F-75103 Paris, France
Ciuti, C.
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Chassagneux, Y.
Manquest, C.
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Univ Paris 07, Lab Mat & Phenomenes Quant, F-75103 Paris, France
CNRS, UMR 7162, F-75103 Paris, FranceUniv Paris 07, Lab Mat & Phenomenes Quant, F-75103 Paris, France
Manquest, C.
Gennser, U.
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CNRS, LPN, Lab Photon & Nanostruct, F-91460 Marcoussis, FranceUniv Paris 07, Lab Mat & Phenomenes Quant, F-75103 Paris, France