论文标题
增强的纠缠和不对称的EPR转向
Enhanced entanglement and asymmetric EPR steering between magnons
论文作者
论文摘要
宏观系统中强大的纠缠的产生和操纵和爱因斯坦 - 波多斯基 - 罗森(EPR)转向是现代物理学的杰出挑战。尤其是,对不对称EPR转向的观察对于其在解释量子力学的性质及其应用中的基本作用对于在不同各方的信任程度高度不对称的任务中的资源而言至关重要。在这里,我们研究了混合铁磁铁 - 轻质系统中两个宏观镁元素之间的纠缠和EPR转向。在没有光线的情况下,两种均匀的透明质上的两种类型的镁可以纠缠,但是当量子降低相同的速率时,量子转向不会发生。在存在腔场的情况下,纠缠可以显着增强,并且在两个具有相等倾向的镁之间出现强大的双向不对称量子转向。这与传统的方案大不相同,以通过降低双方施加其他不平衡的损失或噪音来产生不对称转向的方案。在空腔光子的冷却效果下,声学和光学镁的不平衡种群对基本物理学的理解是充分理解的。我们的发现可能提供了一个新颖的平台来操纵量子转向,并且检测双方转向的检测提供了一个旋钮,可以探测磁铁的每个sublattice上的磁阻尼。
The generation and manipulation of strong entanglement and Einstein-Podolsky-Rosen (EPR) steering in macroscopic systems are outstanding challenges in modern physics. Especially, the observation of asymmetric EPR steering is important for both its fundamental role in interpreting the nature of quantum mechanics and its application as resource for the tasks where the levels of trust at different parties are highly asymmetric. Here, we study the entanglement and EPR steering between two macroscopic magnons in a hybrid ferrimagnet-light system. In the absence of light, the two types of magnons on the two sublattices can be entangled, but no quantum steering occurs when they are damped with the same rates. In the presence of the cavity field, the entanglement can be significantly enhanced, and strong two-way asymmetric quantum steering appears between two magnons with equal dispassion. This is very different from the conventional protocols to produce asymmetric steering by imposing additional unbalanced losses or noises on the two parties at the cost of reducing steerability. The essential physics is well understood by the unbalanced population of acoustic and optical magnons under the cooling effect of cavity photons. Our finding may provide a novel platform to manipulate the quantum steering and the detection of bi-party steering provides a knob to probe the magnetic damping on each sublattice of a magnet.