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March 25, 2026Nature Communications2 citationsOpen Access

Intrinsically chiral exciton polaritons in an atomically-thin semiconductor

MWM. J. WurdackIIIvan V. IorshSVSarka Vavreckova

Key Points

  • To explore strong coupling between circularly polarized photons and spin-polarized excitons in atomically-thin semiconductors.
  • Utilized atomically-thin transition metal dichalcogenide crystals (TMDCs) on a BIC-hosting metasurface.
  • Investigated the formation of intrinsically chiral valley-selective exciton polaritons.
  • Analyzed photoluminescence (PL) to assess polarization and intensity differences.
  • Observed enhanced PL intensity and circular polarization of polaritons compared to uncoupled excitons.
  • Demonstrated control of spin alignment in upper and lower polaritons using circularly polarized excitation.
  • Highlighted energy relaxation dynamics influenced by the Brillouin zone folding.

Abstract

Abstract Photonic bound states in the continuum (BICs) have emerged as a versatile tool for enhancing light-matter interactions by strongly confining light fields. Chiral BICs are photonic resonances with a high degree of circular polarisation, which hold great promise for spin-selective applications in quantum optics and nanophotonics. Here, we demonstrate a novel application of a chiral BIC for inducing strong coupling between the circularly polarised photons and spin-polarised (valley) excitons (bound electron-hole pairs) in atomically-thin transition metal dichalcogenide crystals (TMDCs). By placing monolayer WS 2 onto the BIC-hosting metasurface, we observe the formation of intrinsically chiral, valley-selective exciton polaritons, evidenced by circularly polarised photoluminescence (PL) at two distinct energy levels. The PL intensity and degree of circular polarisation of polaritons exceed those of uncoupled excitons in our structure by an order of magnitude. Our microscopic model shows that this enhancement is due to folding of the Brillouin zone creating a direct emission path for high-momenta polaritonic states far outside the light cone, thereby providing a shortcut to thermalisation (energy relaxation) and suppressing depolarisation. Moreover, while the polarisation of the upper polariton is determined by the valley excitons, the lower polariton behaves like an intrinsic chiral emitter with its polarisation fixed by the BIC. Therefore, the spin alignment of the upper and lower polaritons ( ↑ ↓ and ↑ ↑ ) can be controlled by σ + and σ − circularly polarised optical excitation, respectively. Our work introduces a new type of chiral light-matter quasi-particles in atomically-thin semiconductors and provides an insight into their energy relaxation dynamics.

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Cite This Study

Wurdack et al. (2026) studied this question.

synapsesocial.com/papers/69c37b93b34aaaeb1a67e123https://doi.org/10.1038/s41467-026-70875-5
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