论文标题
来自集成分散多色soliton的合成频率晶格
Synthetic Frequency Lattices from an Integrated Dispersive Multi-Color Soliton
论文作者
论文摘要
从基本非线性物理学以及便携式和低功率技术应用在通信,传感和计量学的角度来看,光学微孔子中的耗散性kerr孤子(DKSS)已经进行了深入研究。同时,合成维度提供了研究物理现象的希望,其维度超出了几何形状,并已在光学方面实施。 DKS物理学与合成维度的相互作用有望揭示许多新的物理和技术见解,但仍有许多基本挑战。特别是,DKS本质上依赖分散体存在,而合成频率晶格的创建通常需要无散的系统。我们通过在分散多色soliton的特征频率空间中创建合成频率晶格的变化,这是通过全光学的非线性耦合的 - 与八度跨度的微型子兼容 - 利用型号的相互作用,可在旋转分散和分散性质之间的相互作用。我们在理论上和实验上检查了1〜Thz重复速率谐振器中的非线性耦合机制,并在形成多色独感的不同波动架之间证明了四波混合bragg散射,微型圆形均超过150〜thz,范围超过150〜,产生了一个复杂的全光和集成的合成频率lattice lattice lattice lattice lattice lattice lattice lattice lattice lattice lattice lattice。
Dissipative Kerr solitons (DKSs) in optical microresonators have been intensely studied from the perspective of both fundamental nonlinear physics and portable and low power technological applications in communications, sensing, and metrology. In parallel, synthetic dimensions offer the promise of studying physical phenomena with a dimensionality beyond that imposed by geometry, and have been implemented in optics. The interplay of DKS physics with synthetic dimensions promises to unveil numerous new physical and technological insights, yet many fundamental challenges remain. In particular, DKSs intrinsically rely on dispersion to exist while the creation of synthetic frequency lattices typically needs a dispersion-less system. We present a change of paradigm with the creation of a synthetic frequency lattice in the eigenfrequency space of a dispersive multi-color soliton through all-optical nonlinear coupling -- compatible with octave spanning microcombs -- harnessing the interplay between the cavity dispersion and the dispersion-less nature of the DKS. We examine theoretically and experimentally the nonlinear coupling mechanism in a 1~THz repetition rate resonator and demonstrate four-wave mixing Bragg scattering between the different wavepackets forming the multi-color soliton, with the microcomb ranging over 150~THz, yielding a complex all-optical and integrated synthetic frequency lattice.