由轨道角动量控制的光束移位在带导表面等离子体共振结构中,具有四级原子介质
Optics express
|July 21, 2023
概括
我们展示了可调节的巨型Goos-Hänchen (GH) 和Imbert-Fedorov (IF) 束转移,使用导向波表面等离子体共振结构和具有自发生成相干性 (SGC) 的连贯原子介质. 这种方法为光学应用提供了对光束转移的增强控制.
科学领域:
- 量子光学就是一个量子光学.
- 塑制剂的使用方法
- 原子物理 原子物理
背景情况:
- 像Goos-Hänchen (GH) 和Imbert-Fedorov (IF) 这样的光束转移在光学中至关重要.
- 控制这些转移,特别是对于拉格尔-高斯 (LG) 束,是具有挑战性的.
- 引导波表面等离子体共振 (GWSPR) 为光学操纵提供了一个平台.
研究的目的:
- 提出和分析可调节的巨型GH和IF光束转移的方案.
- 研究自发产生的连贯性 (SGC) 在增强和控制这些转变中的作用.
- 探索这种现象在集成光学和传感器中的潜在应用.
主要方法:
- 使用GWSPR结构与展示SGC的连贯原子介质相结合.
- 分析撞击LG光束轨道角动量的效应.
- 研究触发场和拉比频率对光束转移和吸收的影响.
主要成果:
- 实现了同时增强和控制GH和IF轮班.
- 由于SGC,在原子介质中证明了消失的线性吸收和可控制的非线性吸收.
- 展示了通过操纵触发场的拉比频率来改变GH转移的方向的能力.
结论:
- 拟议的方案为GH和IF光束转移提供了灵活和增强的控制.
- 原子介质中的SGC是克服控制光束转移的局限性的关键.
- 这项工作在先进的光学设备,传感器和集成光学中具有潜在的应用.
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