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Architecting a nonlinear hybrid crystal-glass metamaterial fiber for all-optical photonic integration

机译:架构全光学光子集成的非线性混合晶体玻璃超材料纤维

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The ideal form of a compact all-optical frequency conversion in a photonic circuit is a monolithical intracavity and resonant nonlinear fiber scheme. However, integrating nonlinear crystalline material that provides significant gain and realizes enhanced second-order nonlinearity (chi((2))) remains challenging to date. This challenge is due to the inherent conflict in achieving crystallization of nonlinear crystals in a rather unstable state, while attaining a sufficient thermal stability for glass fiber drawing. In addition, existing nano-fabrication techniques, such as the e-beam and focused ion beam, are not necessarily suitable for fabricating such large-scale three-dimensional metamaterials throughout the fiber. We therefore propose and demonstrate, for the first time, a new platform toward an enhanced chi((2)), where a large-scale harmonic crystal (Si4+:gamma-Al2O3) is monolithically integrated in a hybrid crystal-glass metamaterial fiber cavity. Through a comprehensive nano-scale investigation, along with nonlinear optical measurement, we confirmed a detailed growth mechanism for a non-centrosymmetric harmonic crystal directly derived from a centrosymmetric sapphire template. The key to this accomplishment lies in the development of a simple and scalable laser-based fiber drawing that involves the interplay of the inter-crystalline layer forming, the crystal core phase separation, and considerable defective centers. The proof-of-concept developed in this study can be applied to any nonlinear optical fiber comprised of hybrid materials, depending on the practical applications.
机译:光子电路中的紧凑型全光频转换的理想形式是单片内部腔内和谐振非线性光纤方案。然而,整合非线性结晶材料,该材料提供显着增益并实现增强的二阶非线性(Chi((2)))迄今为止仍然具有挑战性。这种挑战是由于在相当不稳定的状态下实现非线性晶体结晶的固有突出,同时达到了足够的玻璃纤维拉伸的热稳定性。另外,现有的纳米制造技术,例如电子束和聚焦离子束,不一定适合于在整个纤维中制造这种大型三维超材料。因此,我们首次提出并证明了新的平台朝向增强型CHI((2)),其中大规模谐波晶体(Si4 +:Gamma-Al2O3)在混合晶体玻璃超玻璃纤维腔中单线上集成在一起。通过全面的纳米级调查,以及非线性光学测量,我们确认了一种直接衍生自带离心蓝宝石模板的非亚聚对称谐波晶体的详细生长机制。该成就的关键在于开发简单且可伸缩的激光基光纤图,涉及结晶层晶间层形成,晶体相分离和相当缺陷的中心的相互作用。本研究中开发的概念证明可以应用于任何非线性光纤,其包括混合材料,这取决于实际应用。

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