在活性微环腔中展示高频自脉冲振荡
Abdou Eltamimy Shetewy1, Mircea Traian Catuneanu2, Menglong He2
1Integrated Photonic Devices Group, Chair of RF and Photonics engineering, TU Dresden, 01069, Dresden, Germany. abdou.shetewy@tu-dresden.de.
Scientific reports
|October 11, 2024
概括
集成的微环共振器表现出高频自脉冲振荡 (高达30 MHz). 振荡特征可以通过输入功率和反向偏差来控制,这对于神经网络同步至关重要.
科学领域:
- 光学和光学工程的光学和光学工程.
- 综合光子学 综合光子学
- 非线性光学是一种非线性光学.
背景情况:
- 集成的活性微环共振器是光子集成电路中的关键组件.
- 非线性光学效应,包括热光学,自由载体和克尔效应,显著影响了共振器的行为.
- 这种设备中的自脉冲振荡在光通信和计算中具有潜在的应用.
研究的目的:
- 实验研究集成活性微环共振器中的自脉冲 (SP) 振荡.
- 为了证明对SP振荡频率和工作周期的控制.
- 使用数学模型探索这些振荡的稳定区域.
主要方法:
- 在不同反向偏向电压和连续波 (CW) 输入功率下,对微环共振器中自脉冲振荡的实验性表征.
- 应用PIN连接点用于载体移除和控制.
- 使用合模式理论进行数值模拟,以分析稳定性区域.
主要成果:
- 实现高频自脉冲振荡高达30MHz,具有毫伏反向偏差.
- 通过调整CW输入功率和反向偏移电压来证明振荡频率和工作周期的调整性.
- 通过数值建模,确定了自我脉冲现象的稳定区域.
结论:
- 集成的活性微环共振器可以产生高频,可控制的自我脉冲振荡.
- 控制振荡参数的能力对于神经网络同步等应用至关重要.
- 数学建模为这些设备的稳定性和运行模式提供了宝贵的见解.
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