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Good plasmons in a bad metal

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arxiv 2406.05703 v1 pith:GOTWB5DR submitted 2024-06-09 cond-mat.str-el cond-mat.mes-hallphysics.optics

classification cond-mat.str-elcond-mat.mes-hallphysics.optics
keywords plasmonshppsmoocl2collectivecorrelateddifferentelectronicfermi
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Correlated materials may exhibit unusually high resistivity increasing linearly in temperature, breaking through the Mott-Ioffe-Regel bound, above which coherent quasiparticles are destroyed. The fate of collective charge excitations, or plasmons, in these systems is a subject of debate. Several studies suggest plasmons are overdamped while others detect unrenormalized plasmons. Here, we present direct optical images of low-loss hyperbolic plasmon polaritons (HPPs) in the correlated van der Waals metal MoOCl2. HPPs are plasmon-photon modes that waveguide through extremely anisotropic media and are remarkably long-lived in MoOCl2. Many-body theory supported by photoemission results reveals that MoOCl2 is in an orbital-selective and highly incoherent Peierls phase. Different orbitals acquire markedly different bonding-antibonding character, producing a highly-anisotropic, isolated Fermi surface. The Fermi surface is further reconstructed and made partly incoherent by electronic interactions, renormalizing the plasma frequency. HPPs remain long-lived in spite of this, allowing us to uncover previously unseen imprints of electronic correlations on plasmonic collective modes.

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  1. Quantum Vacuum in Matter

    quant-ph 2025-06 conditional novelty 2.0 of 10

    A perspective on cavity quantum electrodynamics in the ultrastrong coupling regime, surveying experiments, cavity designs, and open challenges for engineering materials with vacuum fluctuations.

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