论文标题
散发耦合型镁质的双重性
Bistability in dissipatively coupled cavity magnonics
论文作者
论文摘要
谐振器与共同储层产生的谐振器的耗散耦合引起了有趣的新物理,例如能级吸引力。在这项研究中,我们报告了散发耦合的腔宏观系统中的非线性特性。将磁性材料YIG(Yttrium Iron Garnet)放置在Fabry-Perot样微波腔的磁场节点上,以便将镁和腔光子耗散。在高功率激发下,在传输光谱中观察到非线性效应,显示出可行的行为。观察到的双稳定性表现为顺时针,逆时针和类似蝴蝶样的磁滞回路,其频率不同。实验结果很好地解释为悬挂振荡器与谐波振荡器散发性振荡器,并且可以通过耦合振荡器模型定量确定所需的触发条件。我们的结果表明,磁化阻尼已被耗散相互作用抑制,从而降低了常规木元kerr双态性的阈值。这项工作阐明了潜在的应用在开发低功率非线性设备,增强的非谐度传感器以及探索非线性型型腔镁物理学的情况下。
Dissipative coupling of resonators arising from their cooperative dampings to a common reservoir induces intriguingly new physics such as energy level attraction. In this study, we report the nonlinear properties in a dissipatively coupled cavity magnonic system. A magnetic material YIG (yttrium iron garnet) is placed at the magnetic field node of a Fabry-Perot-like microwave cavity such that the magnons and cavity photons are dissipatively coupled. Under high power excitation, a nonlinear effect is observed in the transmission spectra, showing bistable behaviors. The observed bistabilities are manifested as clockwise, counterclockwise, and butterfly-like hysteresis loops with different frequency detuning. The experimental results are well explained as a Duffing oscillator dissipatively coupled with a harmonic one and the required trigger condition for bistability could be determined quantitatively by the coupled oscillator model. Our results demonstrate that the magnon damping has been suppressed by the dissipative interaction, which thereby reduces the threshold for conventional magnon Kerr bistability. This work sheds light upon potential applications in developing low power nonlinearity devices, enhanced anharmonicity sensors and for exploring the non-Hermitian physics of cavity magnonics in the nonlinear regime.