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Signatures of collective photon emission and ferroelectric ordering of excitons near their Mott insulating state in a WSe₂/WS₂ heterobilayer

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arxiv 2502.19490 v1 pith:F2OBSQV5 submitted 2025-02-26 cond-mat.mes-hall cond-mat.str-elquant-ph

Signatures of collective photon emission and ferroelectric ordering of excitons near their Mott insulating state in a WSe₂/WS₂ heterobilayer

classification cond-mat.mes-hall cond-mat.str-elquant-ph
keywords moirexcitonscollectiveemissionferroelectricinteractionsopticalphases
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Spontaneous symmetry breaking, arising from the competition of interactions and quantum fluctuations, is fundamental to understanding ordered electronic phases. Although electrically neutral, optical excitations like excitons can interact through their dipole moment, raising the possibility of optically active ordered phases. The effects of spontaneous ordering on optical properties remain largely unexplored. Recent observations of the excitonic Mott insulating state in semiconducting moir\'e crystals make them promising for addressing this question. Here, we present evidence for an in-plane ferroelectric phase of dipolar moir\'e excitons driven by strong exciton-exciton interactions. We discover a surprising speed-up of photon emission at late times and low densities in excitonic decay. This counterintuitive behavior is attributed to collective radiance, linked to the transition between disordered and symmetry-broken ferroelectric phases of moir\'e excitons. Our findings provide first evidence for strong dipolar inter-site interactions in moir\'e lattices, demonstrate collective photon emission as a probe for moir\'e quantum materials, and pave the way for exploring cooperative optical phenomena in strongly correlated systems.

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  1. Purely electronic model for exciton-polaron formation in moir\'e heterostructures

    cond-mat.str-el 2025-03 unverdicted novelty 6.0

    A purely electronic model for exciton-polarons in moiré lattices predicts density-dependent mass renormalization and sign change near correlated insulators.