明亮和黑暗的塔尔博特脉冲列车在一个芯片上
Jiaye Wu1, Marco Clementi1, Edgars Nitiss1
1École Polytechnique Fédérale de Lausanne (EPFL), Photonic Systems Laboratory (PHOSL), STI-IEM, Station 11, Lausanne, CH-1015 Switzerland.
概括
研究人员展示了一个集成的光子芯片,该芯片通过使用时间塔尔博特效应将光脉冲列车重复率翻一番. 这个芯片可以在芯片上缩放脉冲率而不会改变光谱,为先进的光子系统铺平了道路.
科学领域:
- 光子学 是一个光子学.
- 光学工程是指光学工程.
- 量子光学是一种量子光学.
背景情况:
- 时间塔尔博特效应使光学脉冲列车的自成像成为可能,传统上用宏观设置来研究.
- 将塔尔博特效应集成到光子芯片上,用于脉冲列车操纵,仍然在很大程度上未被探索.
- 现有的改变脉冲重复率的方法通常涉及大型仪器.
研究的目的:
- 设计和实验验证一个集成的光子芯片用于时间塔尔博特效应应用.
- 为了展示光学脉冲列车的芯片上自我图像的生成.
- 为了实现在不同输出模式之间切换的电调性.
主要方法:
- 化光子集成电路的制造.
- 将Talbot相位关系打印在相位光学频率上.
- 对明亮和黑暗脉冲列车进行双重自成像的实验演示.
- 谱属性的表征和重复率的乘法.
主要成果:
- 成功演示了一种原则验证的集成设备.
- 在没有光谱修改的情况下,实现了明亮和黑暗脉冲列车的GHz重复率翻倍.
- 证明了在通过和重复率乘法功能之间切换的电调性.
- 确认与其他频率的兼容性.
结论:
- 开发的集成光子芯片有效地利用时间塔尔博特效应来实现芯片上的脉冲重复率乘法.
- 这项工作为基于Talbot的脉冲乘数器的系统芯片集成奠定了基础.
- 允许灵活的,在芯片上的光脉冲列车重复率的升级,同时保持光谱特征.
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