论文标题
Ultrastrong Magnon-Magnon耦合以反抗甲型相互作用为主
Ultrastrong Magnon-Magnon Coupling Dominated by Antiresonant Interactions
论文作者
论文摘要
外来量子真空现象是在具有超肌相互作用的空腔量子电动力学(QED)系统中预测的。预计他们的基态被抑制量子波动被真空挤压状态。这种现象的来源是哈密顿量中的反义词术语,但是与光结合系统中的谐振相互作用相比,反毒素相互作用通常可以忽略不计。我们报告了一个不寻常的耦合物质 - 镁质系统,可以模拟具有耦合强度的独特腔Qed hamiltonian,这些强度易于将其调谐到Ultrastrong耦合方案中,并且具有主导的抗抗抗剂术语。我们发现了一个新的制度,在该方案中,真空bloch-siegert偏移(反毒剂相互作用的标志)大大超过了来自谐振相互作用的类似频率转移。此外,我们从理论上探索了系统的基态,并计算出多达5.9 dB的量子波动抑制。这些观察结果表明,Magnonic系统为模拟外来量子真空现象提供了理想的平台。
Exotic quantum vacuum phenomena are predicted in cavity quantum electrodynamics (QED) systems with ultrastrong light-matter interactions. Their ground states are predicted to be vacuum squeezed states with suppressed quantum fluctuations. The source of such phenomena are antiresonant terms in the Hamiltonian, yet antiresonant interactions are typically negligible compared to resonant interactions in light-matter systems. We report an unusual coupled matter-matter system of magnons that can simulate a unique cavity QED Hamiltonian with coupling strengths that are easily tunable into the ultrastrong coupling regime and with dominant antiresonant terms. We found a novel regime where vacuum Bloch-Siegert shifts, the hallmark of antiresonant interactions, greatly exceed analogous frequency shifts from resonant interactions. Further, we theoretically explored the system's ground state and calculated up to 5.9 dB of quantum fluctuation suppression. These observations demonstrate that magnonic systems provide an ideal platform for simulating exotic quantum vacuum phenomena predicted in ultrastrongly coupled light-matter systems.