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Deep-strong tunable plasmon–exciton coupling utilizing Ag– Si core–shell combined with WS 2 monolayer for quantum optics applications

ملخص البحث

In close proximity to quantum emitters (QEs), plasmonic nanoparticles (NPs) facilitate energy exchange with the QEs, which is known as plasmon–exciton coupling. The strong coupling regime, associated with Rabi splitting, is crucial for advanced nanophotonic devices, including solar cells, single-photon nonlinear optics, and nanolasers. Recently, high refractive index semiconductor NPs (typically Si NPs) have emerged for designing strongly coupled systems. However, their large mode volumes of magnetic Mie resonances have limited their success in achieving strong coupling. This study investigates the plasmon–exciton coupling between an Ag–Si core–shell and a monolayer QE of WS2 (Ag–Si–WS2 system) in air and water environments. Here, we compare the coupling dynamics of the hybrid Ag–Si–WS2 system to
that of the Si–WS2 system as a benchmarking system. Employing Mie’s theory of core–shell scattering, in conjunction with Maxwell–Garnett effective medium theory, we analyze the optical responses of both configurations. Then, we calculate the Rabi splitting frequency for each system to identify the coupling regime. Our results suggest that the Ag–Si–WS2 system can achieve a deep-strong coupling regime when the Ag core radius is less than 30 nm, with enhanced coupling strength in water compared to air. Conversely, the Si–WS2 system does not achieve strong coupling in either medium. The hybrid modes in Ag–Si–WS2 demonstrate remarkable symmetrical spectral characteristics compared
to the asymmetric spectral line shape observed in the Si–WS2 system. The findings suggest avenues for utilizing the plasmon–exciton strong coupling in the Ag–Si–WS2 system to enhance optoelectronic and quantum electronic devices. 
 

مؤلف البحث
Mohamed Mahmoud, A. T. AlMotasem, M. I. Abd-Elrahman, Nagih M. Shaalan, Mohamed Rashad, and Hesham Fares
تاريخ البحث
قسم البحث
مجلة البحث
The Journal of Chemical Physics
صفحات البحث
094703-1 - 094703-13
الناشر
AIP publishing
تصنيف البحث
Q1
عدد البحث
163
موقع البحث
doi.org/10.1063/5.0277425
سنة البحث
2025