通过在非线性光学网格中通过朱尔-姆森光扩展激发基本模式
Optics letters
|February 14, 2025
概括
这项研究引入了一种新的非线性热力学方法,以防止多核光纤阵列中的光连贯性损失. 通过使用朱尔-姆森膨胀,光被冷却到接近零的光学温度,有效地进入其基本模式.
科学领域:
- 非线性光学是一种非线性光学.
- 光学热力学是指光学热力学.
- 波导光学 波导光学 波导光学
背景情况:
- 将光线注入多核光纤阵列通常会在线性条件下由于多模传播而导致空间连贯性损失.
- 保持光的一致性对于各种光子应用至关重要.
研究的目的:
- 介绍和演示一种方法,以减轻多核光纤阵列中的空间连贯性损失.
- 为了利用非线性热力学原理进行光学连贯性控制.
主要方法:
- 实现一个非线性热力学朱尔-姆森膨胀.
- 光线从一个较小的非线性光学阵列突然过渡到一个较大的非线性光学阵列.
- 对光学温度降低和模式动态的分析.
主要成果:
- 在非线性膨胀过程中,光学温度急剧下降到接近零的值.
- 实现了高效和不可逆转的光流进入基本模式.
- 展示了网格元素与输入端口的同步.
结论:
- 非线性热力学尔-姆森膨胀有效地减轻了多核光纤阵列中的连贯性损失.
- 观察到的非线性效应在各种数组几何体中是可预测的,并且可以通过输入条件控制.
- 光学温度降低与单个注射点的输入功率成正比.
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