等离子体子
光子学
光电子学
震级(天文学)
量子光学
物理
领域(数学)
自旋(空气动力学)
量子
凝聚态物理
材料科学
光学
量子力学
热力学
数学
天文
纯数学
作者
Vinit Kumar,Ajit Kumar,Rupam Srivastava,Anuj K. Sharma,Yogendra Kumar Prajapati
标识
DOI:10.1109/jqe.2025.3592448
摘要
This research investigates the integration of photonic spin-orbit interaction (SOI) with plasmonic phenomenon using Barium Titanate (BaTiO3) as the active material. A remarkable transverse spin-dependent shift (SDS) of 838 μm is demon-strated—approximately 28 times larger than that observed in conventional plasmonic material such as silver (Ag). The study further explores the interplay between the enhanced electric field and spin-dependent splitting under resonance conditions, revealing that the resonance angle is strongly influenced by both SDS magnitude and field enhancement. Leveraging this enhanced spin-based interaction, we demonstrate the potential for quantum-enabled optical device design, including an optical differentiator and a high-sensitivity sensor. The proposed differentiator structure exhibits a power weight of 414.96 for the co-polarized (V–V) component and 0.35 for the cross-polarized (V–H/H–V) component. Moreover, the photonic spin-based sensor architecture achieves a sensitivity enhancement of ~ 52× compared to a standard plasmonic system at a refractive index of 1.33. These findings establish BaTiO3-integrated plasmonic platforms as promising candidates for advanced spin-based photonic devices in the realm of quantum technologies.
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