论文标题
光子分子中的耗散kerr孤子
Dissipative Kerr solitons in photonic molecules
论文作者
论文摘要
许多物理系统显示量化的能量状态。在光学中,相互作用的谐振空腔显示出具有分裂本征频率的传输光谱,类似于键合的多原子中相互作用状态(即分子,系统)所产生的分裂能级。在这里,我们研究了线性耦合微孔子中光子双原子分子的非线性动力学,并证明当激光跨分开能级调谐时,系统支持自我强化孤立波的形成。该输出对应于频谱分布在单模(原子)系统中无法实现的频率梳子(微梳)。光子分子微型群具有相干,可重现的,并且具有高度转换效率和光谱平坦,同时使用几毫米的激光功率进行操作。这些特性可以有利于微生物与半导体激光技术的异质整合,并促进光学通信,光谱和天文学的应用。
Many physical systems display quantized energy states. In optics, interacting resonant cavities show a transmission spectrum with split eigenfrequencies, similar to the split energy levels that result from interacting states in bonded multi-atomic, i.e. molecular, systems. Here, we study the nonlinear dynamics of photonic diatomic molecules in linearly coupled microresonators and demonstrate that the system supports the formation of self-enforcing solitary waves when a laser is tuned across a split energy level. The output corresponds to a frequency comb (microcomb) whose characteristics in terms of power spectral distribution are unattainable in single-mode (atomic) systems. Photonic molecule microcombs are coherent, reproducible, and reach high conversion efficiency and spectral flatness whilst operated with a laser power of a few milliwatts. These properties can favor the heterogeneous integration of microcombs with semiconductor laser technology and facilitate applications in optical communications, spectroscopy and astronomy.