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Demonstration of a chip-based optical isolator with parametric amplification

机译:演示具有参数放大功能的基于芯片的光隔离器

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摘要

Despite being fundamentally challenging in integrated (nano)photonics, achieving chip-based light non-reciprocity becomes increasingly urgent in signal processing and optical communications. Because of material incompatibilities in conventional approaches based on the Faraday effect, alternative solutions have resorted to nonlinear processes to obtain one-way transmission. However, dynamic reciprocity in a recent theoretical analysis has pinned down the functionalities of these nonlinear isolators. To bypass such dynamic reciprocity, we here demonstrate an optical isolator on a silicon chip enforced by phase-matched parametric amplification in four-wave mixing. Using a high-Q microtoroid resonator, we realize highly non-reciprocal transport at the 1,550 nm wavelength when waves are injected from both directions in two different operating configurations. Our design, compatible with current complementary metal-oxide-semiconductor (CMOS) techniques, yields convincing isolation performance with sufficiently low insertion loss for a wide range of input power levels. Moreover, our work demonstrates the possibility of designing chip-based magnetic-free optical isolators for information processing and laser protection.
机译:尽管在集成(纳米)光子学中从根本上具有挑战性,但在信号处理和光通信中,实现基于芯片的光不可逆性变得越来越迫切。由于传统方法中基于法拉第效应的材料不兼容,因此替代解决方案已采用非线性过程来获得单向传输。但是,在最近的理论分析中,动态互易性已限制了这些非线性隔离器的功能。为了绕过这种动态互易性,我们在这里演示了硅芯片上的光隔离器,该光隔离器由四波混频中的相位匹配参数放大来强制执行。使用高Q微环形谐振器,当以两种不同的操作配置从两个方向注入波时,我们实现了1,550 nm波长的高度不可逆传输。我们的设计与当前的互补金属氧化物半导体(CMOS)技术兼容,可为各种输入功率范围提供令人信服的隔离性能,且插入损耗足够低。此外,我们的工作证明了为信息处理和激光保护设计基于芯片的无磁性光学隔离器的可能性。

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