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用于微波频率的电磁辐射工程的球形布拉格共振器的实验性表征
Yalina García-Puente1, Jean-Jacques Laurin2, Raman Kashyap3,2
1Department of Engineering Physics, Poly-Grames Research Centre, Polytechnique Montreal, 2900 Édouard-Montpetit, Montreal, QC, H3T 1J4, Canada. yalina-2.garcia-puente@polymtl.ca.
Scientific reports
|November 22, 2023
概括
3D打印的球形布拉格共振器 (SBRs) 增强了自发发射. 这些毫米大小的介电结构改变了电磁状态,显示了纳米天线和量子信息应用的潜力.
科学领域:
- 光学和光子学 在光学和光子学.
- 材料科学 材料科学 材料科学
- 应用物理 应用物理
背景情况:
- 球形布拉格共振器 (SBR) 是可以控制光物质相互作用的结构.
- 3D打印为制造微/毫米尺度光学设备提供了一种多功能方法.
- 了解状态的光子密度对于控制自发发射至关重要.
研究的目的:
- 通过3D打印制造的毫米尺寸SBR进行实验研究和数值验证.
- 分析这些SBR的电磁性质和共振模式.
- 探索SBR在自发发射工程中的潜力.
主要方法:
- 使用3D打印 (聚胺) 制造毫米尺寸的SBR.
- 对反射和传导系数进行实验测量.
- 对自身频率,局部状态密度和散射效率的数值计算.
- 对双极衰变速率增强和源位置影响的分析.
主要成果:
- 在缺陷腔 SBR 中观察到固态和增加局部密度的状态.
- 在缺陷腔中实现了双极的[公式:参见文本]的衰变速率提升.
- 通过散射测量和多极贡献计算验证了共振模式.
- 证明了SBRs作为改变电磁状态的通向空洞.
结论:
- 3D打印的SBR可以有效地设计自发电磁辐射.
- SBR提供了一个可调节的平台,用于增强或抑制自发发射.
- 潜在的应用包括介电纳米天线,光电子和量子信息技术.
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