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Intermode Breather Solitons in Optical Microresonators

机译:光学微管中的Intermode呼吸孤子

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Dissipative solitons can be found in a variety of systems resulting from the double balance between dispersion and nonlinearity, as well as gain and loss. Recently, they have been observed to spontaneously form in Kerr nonlinear microresonators driven by a continuous wave laser, providing a compact source of coherent optical frequency combs. As optical microresonators are commonly multimode, intermode interactions, which give rise to avoided mode crossings, frequently occur and can alter the soliton properties. Recent works have shown that avoided mode crossings cause the soliton to acquire a single-mode dispersive wave, a recoil in the spectrum, or lead to soliton decay. Here, we show that avoided mode crossings can also trigger the formation of breather solitons, solitons that undergo a periodic evolution in their amplitude and duration. This new breather soliton, referred to as an intermode breather soliton, occurs within a laser detuning range where conventionally stationary (i.e., stable) dissipative Kerr solitons are expected. We experimentally demonstrate the phenomenon in two microresonator platforms (crystalline magnesium fluoride and photonic chip-based silicon nitride microresonators) and theoretically describe the dynamics based on a pair of coupled Lugiato-Lefever equations. We show that the breathing is associated with a periodic energy exchange between the soliton and a second optical mode family, a behavior that can be modeled by a response function acting on dissipative solitons described by the Lugiato-Lefever model. The observation of breathing dynamics in the conventionally stable soliton regime is relevant to applications in metrology such as low-noise microwave generation, frequency synthesis, or spectroscopy.
机译:耗散孤子可以在各种系统中找到,这些系统是由分散和非线性之间的双平衡,以及增益和损失。最近,已经观察到它们在由连续波激光驱动的Kerr非线性微生物中自发地形成,提供紧凑的相干光学频率梳理。由于光学微生物通常是多模,相互作用,其产生避免模式交叉,经常发生并且可以改变孤子性质。最近的作用表明,避免模式过境使孤子可以获得单模分散波,光谱中的反冲,或导致孤子腐烂。在这里,我们表明,避免的模式交叉也可以触发呼吸孤子的形成,孤子在其幅度和持续时间内进行周期性的演变。这种新的呼吸孤子被称为白编码呼吸龙眼,发生在激光静脉静脉静脉范围内,其中通常会静止(即,稳定的)耗散Kerr孤子。我们通过实验证明了两个微管架平台(晶体氟化镁和光子芯片族氮化硅微谐振器)中的现象,并且理论上基于一对耦合的Lugiato-Lugever方程描述动态。我们表明,呼吸与孤子和第二光学模式系列之间的周期性能量交换,可以通过作用于Lugiato-Lugiato-Lefever模型描述的耗散孤子的响应函数来建模的行为。在常规稳定的孤子政权中呼吸动力学的观察与计量中的应用相关,例如低噪声微波生成,频率合成或光谱。

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