在全光通信频段的异常点周围的时间不对称循环
Jae Woong Yoon1,2, Youngsun Choi1, Choloong Hahn3
1Department of Physics, Hanyang University, Seoul, South Korea.
Nature
|September 19, 2018
概括
研究人员展示了强大的光子装置, 这一突破使得宽带芯片上的光学设备可以用于隔离器和模式转换器等应用.
科学领域:
- * 物理学,特别是非赫尔密斯和拓光子学.
- * 探索开放系统动态和异常物理现象.
背景情况:
- 在非赫米特系统中的特殊点 (EP) 提供了强大的开放系统动态.
- * 传统的赫米蒂斯动态与EP的奇拉现象形成对比.
- 在应用技术平台中实现 EP 是一个关键的挑战.
研究的目的:
- * 通过实验证明一种强大的光子结构,用于非赫尔密斯拓运算.
- * 在光学领域的特殊点周围实现时间不对称的光传输.
- * 探索宽带芯片上的光学设备和实际应用的潜力.
主要方法:
- 使用两个通道波导的光子结构的制造.
- * 集成板-波导泄漏辐射水槽来控制非赫米特式的哈密尔顿.
- 通过EP周围的时间不对称循环进行光子模式传输的实验演示.
主要成果:
- 在光子结构中实现了强大的时间不对称的光传输.
- 在极其宽的光谱带 (1.261.675μm) 上经过证明的操作,覆盖整个光学电信窗口.
- * 通过设备架构确认了非赫密斯汉密尔顿的精确控制.
结论:
- 建立了基于非赫米特拓动态的宽带芯片上的光学设备的半导体平台.
- *为实用应用铺平了道路,例如芯片上的光学隔离器和非互换模式转换器.
- 突出了各种科学领域的非赫米特波动力学的技术相关性.
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