Centre for Quantum Technologies, National University of Singapore, 3 Science Drive 2, Singapore 117543, Singapore.
California Institute of Technology, Pasadena, California 91125, USA.
Phys Rev Lett. 2023 May 26;130(21):213605. doi: 10.1103/PhysRevLett.130.213605.
Photon-mediated interactions within an excited ensemble of emitters can result in Dicke superradiance, where the emission rate is greatly enhanced, manifesting as a high-intensity burst at short times. The superradiant burst is most commonly observed in systems with long-range interactions between the emitters, although the minimal interaction range remains unknown. Here, we put forward a new theoretical method to bound the maximum emission rate by upper bounding the spectral radius of an auxiliary Hamiltonian. We harness this tool to prove that for an arbitrary ordered array with only nearest-neighbor interactions in all dimensions, a superradiant burst is not physically observable. We show that Dicke superradiance requires minimally the inclusion of next-nearest-neighbor interactions. For exponentially decaying interactions, the critical coupling is found to be asymptotically independent of the number of emitters in all dimensions, thereby defining the threshold interaction range where the collective enhancement balances out the decoherence effects. Our findings provide key physical insights to the understanding of collective decay in many-body quantum systems, and the designing of superradiant emission in physical systems for applications such as energy harvesting and quantum sensing.
在激发态发射体的集合中,光子介导的相互作用可以导致狄克超辐射,其中发射率大大增强,表现为短时间内的高强度爆发。虽然最小相互作用范围未知,但超辐射爆发最常见于发射体之间具有长程相互作用的系统中。在这里,我们提出了一种新的理论方法,通过上界辅助哈密顿量的谱半径来限制最大发射率。我们利用这个工具来证明,对于任意一个在所有维度上只有最近邻相互作用的有序阵列,超辐射爆发在物理上是不可观察的。我们表明,狄克超辐射至少需要包含次近邻相互作用。对于指数衰减相互作用,临界耦合在所有维度上渐近独立于发射体的数量,从而定义了集体增强与退相干效应平衡的阈值相互作用范围。我们的发现为理解多体量子系统中的集体衰减以及设计用于能量收集和量子传感等应用的超辐射发射的物理系统提供了关键的物理见解。