Strong-coupling and high-bandwidth cavity electro-optic modulation for advanced pulse-comb synthesis.

IF 23.4 1区 物理与天体物理 Q1 Physics and Astronomy
Tianqi Lei, Yunxiang Song, Yanyun Xue, Qihuang Gong, Marko Lončar, Yaowen Hu
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引用次数: 0

Abstract

Cavity electro-optic (EO) modulation plays a pivotal role in optical pulse and frequency comb synthesis, supporting a wide range of applications including communication, computing, ranging, and quantum information. The ever-growing demand for these applications has driven efforts in enhancing modulation coupling strength and bandwidth towards advanced pulse-comb synthesis. However, the effects of strong-coupling and high-bandwidth cavity EO modulation remain underexplored, due to the lack of a general, unified model that captures this extreme condition. In this work, we present a universal framework for pulse-comb synthesis under cavity EO modulation, where coupling strength and modulation bandwidth far exceed the cavity's free spectral range (FSR). We show that, under such intense and ultrafast driving conditions, EO-driven frequency combs and pulses exhibit rich higher-order nonlinear dynamics, including temporal pulse compression and comb generation with arbitrary pump detuning. Leveraging this framework, we reveal a direct link between the higher-order dynamics of EO pulse-comb generation and the band structure of synthetic dimension. Furthermore, we demonstrate arbitrary comb shaping via machine-learning-based inverse microwave drive design, achieving a tenfold enhancement in cavity EO comb flatness by exploring the synergistic effects of high-bandwidth driving and detuning-induced frequency boundaries. Our findings push cavity EO modulation into a new frontier, unlocking significant potential for universal and machine-learning-programmable EO frequency combs, topological photonics, as well as photonic quantum computing in the strong-coupling and high-bandwidth regimes.

用于先进脉冲梳合成的强耦合和高带宽腔电光调制。
空腔电光调制在光脉冲和频率梳合成中起着举足轻重的作用,支持通信、计算、测距和量子信息等广泛的应用。对这些应用不断增长的需求推动了对先进脉冲梳合成的调制耦合强度和带宽的提高。然而,由于缺乏一个通用的、统一的模型来捕捉这种极端情况,强耦合和高带宽腔EO调制的影响仍然没有得到充分的研究。在这项工作中,我们提出了在腔内EO调制下脉冲梳合成的通用框架,其中耦合强度和调制带宽远远超过腔的自由频谱范围(FSR)。研究表明,在这种强烈和超快的驱动条件下,eo驱动的频率梳和脉冲表现出丰富的高阶非线性动力学,包括时间脉冲压缩和任意泵失谐的梳生成。利用这一框架,我们揭示了EO脉冲梳生成的高阶动力学与合成维数的频带结构之间的直接联系。此外,我们通过基于机器学习的逆微波驱动设计展示了任意梳形,通过探索高带宽驱动和失谐诱导频率边界的协同效应,实现了腔EO梳形平坦度的十倍增强。我们的研究结果将腔EO调制推向了一个新的前沿,释放了通用和机器学习可编程EO频率梳、拓扑光子学以及强耦合和高带宽体制下的光子量子计算的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
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