Propagation of exciton polaritons in a 1D photonic crystal-WS2 system

Exciton–polaritons (EPs) formed by strong coupling between excitons and optical modes combine the advantages of photons and excitons, providing a promising platform for applications in quantum information processing, quantum communication, and quantum transport. Using the transfer matrix method, finite-element simulations, and a coupled harmonic oscillator model, we investigate the strong coupling between bloch surface waves (BSWs) of 1D photonic crystals and excitons of WS2. The reflectance spectrum, Hopfield coefficients, entanglement entropy, group velocity, and propagation length of the EPs are calculated. At resonance, the hybrid system reaches maximum entanglement entropy, corresponding to a maximally hybridized exciton–photon state with equal excitonic and photonic contributions. The group velocity of EPs in the photonic-like regime is significantly large, greatly beyond the bare exciton transport. By introducing the lifetime ratio of the exciton to the BSW mode, we identify three distinct regimes of propagation length, which, respectively, favor high-speed interconnects, coherent synergy, or strong nonlinearity. This study provides a framework for understanding BSW-exciton polaritons and offers design guidelines for high-performance polaritonic devices.

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Publication Details

Journal
Journal of Applied Physics
Published
2026-09-15
DOI
https://doi.org/10.1063/5.0353608
Primary Topic
Strong Light-Matter Interactions
Type
article
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Propagation of exciton polaritons in a 1D photonic crystal-WS2 system

Luxia Wang, Changlin Zheng, Rongyue Yao, Kainan Chang
Journal of Applied Physics
Strong Light-Matter Interactions
article

Propagation of exciton polaritons in a 1D photonic crystal-WS2 system

Luxia Wang, Changlin Zheng, Rongyue Yao, Kainan Chang
article en

Abstract

Exciton–polaritons (EPs) formed by strong coupling between excitons and optical modes combine the advantages of photons and excitons, providing a promising platform for applications in quantum information processing, quantum communication, and quantum transport. Using the transfer matrix method, finite-element simulations, and a coupled harmonic oscillator model, we investigate the strong coupling between bloch surface waves (BSWs) of 1D photonic crystals and excitons of WS2. The reflectance spectrum, Hopfield coefficients, entanglement entropy, group velocity, and propagation length of the EPs are calculated. At resonance, the hybrid system reaches maximum entanglement entropy, corresponding to a maximally hybridized exciton–photon state with equal excitonic and photonic contributions. The group velocity of EPs in the photonic-like regime is significantly large, greatly beyond the bare exciton transport. By introducing the lifetime ratio of the exciton to the BSW mode, we identify three distinct regimes of propagation length, which, respectively, favor high-speed interconnects, coherent synergy, or strong nonlinearity. This study provides a framework for understanding BSW-exciton polaritons and offers design guidelines for high-performance polaritonic devices.

Journal of Applied PhysicsVol. 140(11)
Fudan University (CN), Institute of Theoretical Physics (CN), State Key Laboratory of Surface Physics
Openalex Percentile: Top 13%
Strong Light-Matter Interactions
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Propagation of exciton polaritons in a 1D photonic crystal-WS2 system — Luxia Wang, Changlin Zheng, et al. · Journal of Applied Physics (2026) | TGRS Research Map | TGRS