Group-index-matched frequency conversion in lithium niobate on insulator waveguides

Pawan Kumar , Mohammadreza Younesi , Sina Saravi , Frank Setzpfandt , Thomas Pertsch 
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引用次数: 1

Abstract

Sources of spectrally engineered photonic states are a key resource in several quantum technologies. Of particular importance are the so-called factorizable biphoton states, which possess no spectral entanglement and hence, are ideal for heralded generation of high-purity single photons. An essential prerequisite for generating these states through nonlinear frequency conversion is the control over the group indices of the photonic modes of the source. Here, we show that thin-film lithium niobate on insulator (LNOI) is an excellent platform for this purpose. We design and fabricate periodically poled ridge waveguides in LNOI to demonstrate group index engineering of its guided photonic modes and harness this control to experimentally realize on-chip group index matched type-II sum-frequency generation (SFG). Also, we numerically study the role of the top cladding layer in tuning the dispersion properties of the ridge waveguide structures and reveal a distinctive difference between the air and silica-clad designs which are currently among the two most common device cladding configurations in LNOI. We expect that these results will be relevant for various classical and quantum applications where dispersion control is crucial in tailoring the nonlinear response of the LNOI-based devices.
绝缘体波导上铌酸锂的群指数匹配频率转换
光谱工程光子态源是几种量子技术的关键资源。特别重要的是所谓的可分解双光子态,它没有光谱纠缠,因此是预示高纯度单光子产生的理想状态。通过非线性频率转换产生这些态的必要前提是对源光子模式的群指数的控制。在这里,我们表明薄膜铌酸锂绝缘体(LNOI)是一个很好的平台。我们在LNOI中设计和制造了周期极化脊波导,以演示其引导光子模式的群折射率工程,并利用这种控制实验实现了片上群折射率匹配的ii型和频产生(SFG)。此外,我们数值研究了顶部包层在调整脊波导结构色散特性中的作用,并揭示了空气包层和硅包层设计之间的显著差异,这是目前LNOI中最常见的两种器件包层结构。我们期望这些结果将与各种经典和量子应用相关,其中色散控制对于定制基于lnoi的器件的非线性响应至关重要。
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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