色散一维光子波导中超快脉冲传播时域动力学

IF 6.6 2区 物理与天体物理 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Nanophotonics Pub Date : 2025-01-28 DOI:10.1515/nanoph-2024-0567
Ahmet Oguz Sakin, Ali Murat Demirtas, Hamza Kurt, Mehmet Unlu
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引用次数: 0

摘要

超快脉冲,特别是那些持续时间低于100秒的脉冲,对于实现光物质相互作用的前所未有的精度和控制至关重要。然而,传统的片上光子平台并不是为超快时域操作而设计的,这对实现高峰值功率和高时间分辨率等基本参数提出了重大挑战。当通过具有非线性和高色散轮廓的集成波导传播时,这一挑战尤为明显。为了解决这一挑战,我们提出了一种在色散集成波导中进行超快脉冲传播的设计方法,特别侧重于增强一维光栅波导(1DGWs)的时域特性。该方法旨在确定在超快脉冲传播过程中实现最大峰值功率、增强时间分辨率和延长脉冲存储时间的最佳结构参数。为了验证这种方法,我们在绝缘体上硅(SOI)平台上设计并制造了两个专用的1dgw。采用数字有限脉冲响应(FIR)模型,同时训练传输和相位测量数据,以获得超快的时域特征,使这些结果易于提取。我们的方法使峰值功率增加了2.8倍,并使脉冲展宽减少了24%,从而使时间分辨率的牺牲更小。这些结果可能为色散集成波导中先进的光-物质相互作用铺平道路。
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Ultrafast pulse propagation time-domain dynamics in dispersive one-dimensional photonic waveguides
Ultrafast pulses, particularly those with durations under 100 fs, are crucial in achieving unprecedented precision and control in light–matter interactions. However, conventional on-chip photonic platforms are not inherently designed for ultrafast time-domain operations, posing a significant challenge in achieving essential parameters such as high peak power and high temporal resolution. This challenge is particularly pronounced when propagating through integrated waveguides with nonlinear and high-dispersion profiles. In addressing this challenge, we present a design methodology for ultrafast pulse propagation in dispersive integrated waveguides, specifically focused on enhancing the time-domain characteristics of one-dimensional grating waveguides (1DGWs). The proposed methodology aims to determine the optimal structural parameters for achieving maximum peak power, enhanced temporal resolution, and extended pulse storage duration during ultrafast pulse propagation. To validate this approach, we design and fabricate two specialized 1DGWs on a silicon-on-insulator (SOI) platform. A digital finite impulse response (FIR) model, trained with both transmission and phase measurement data, is employed to obtain ultrafast time-domain characteristics, enabling easy extraction of these results. Our approach achieves a 2.8-fold increase in peak power and reduces pulse broadening by 24 %, resulting in a smaller sacrifice in temporal resolution. These results can possibly pave the way for advanced light–matter interactions within dispersive integrated waveguides.
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来源期刊
Nanophotonics
Nanophotonics NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
13.50
自引率
6.70%
发文量
358
审稿时长
7 weeks
期刊介绍: Nanophotonics, published in collaboration with Sciencewise, is a prestigious journal that showcases recent international research results, notable advancements in the field, and innovative applications. It is regarded as one of the leading publications in the realm of nanophotonics and encompasses a range of article types including research articles, selectively invited reviews, letters, and perspectives. The journal specifically delves into the study of photon interaction with nano-structures, such as carbon nano-tubes, nano metal particles, nano crystals, semiconductor nano dots, photonic crystals, tissue, and DNA. It offers comprehensive coverage of the most up-to-date discoveries, making it an essential resource for physicists, engineers, and material scientists.
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