相关实验视频
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Fabrication and Characterization of Superconducting Resonators
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超宽带毫瓦级共振频率在芯片上翻倍
Marco Clementi1,2, Luca Zatti3, Ji Zhou4
1Photonic Systems Laboratory, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland. marco.clementi01@unipv.it.
Nature communications
|July 4, 2025
概括
研究人员使用一种新型集成设备演示了超宽带共振频率的翻倍. 这克服了非线性光学方面的局限性,使得在广谱频段上能够高效地产生二次波.
科学领域:
- 非线性光学是非线性光学.
- 综合光子学 综合光子学
- 量子光学是一种量子光学.
背景情况:
- 微振解器增强非线性光学过程,如第二和生成.
- 分散性将传统方法限制在窄带操作上.
研究的目的:
- 为了克服超宽带共振频率翻倍的分散限制.
- 开发一种新型的集成设备,用于高效的,宽带宽的第二和生成.
主要方法:
- 使用两个不同的,线性不合的微环共振器,用于独立的和第二波增强.
- 实现光诱导非线性 (χ(2)) 格子,用于在 >200 nm 带宽上的准相匹配.
- 电气上可重新配置的双重共振条件和光学上可重新配置的相位匹配.
主要成果:
- 在整个电信频段上演示了毫瓦级的第二声波生成.
- 实现超宽带共振频率翻倍,超过200nm带宽.
- 配置用于内部Kerr频率 generation和upconversion (>100 nm带宽,高达10mW功率) 的设备.
结论:
- 这种新型的集成装置克服了以前在非线性光学过程中的局限性.
- 独立的共振器调和可重新配置的条件使前所未有的带宽和灵活性成为可能.
- 该技术为光谱学,通信和量子信息处理的先进应用铺平了道路.
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