论文标题
在不断驱动的量子点 - 腔体系统中,声子诱导的纠缠和无键光发射之间的过渡
Phonon-induced transition between entangled and nonentangled photon emission in constantly driven quantum-dot--cavity systems
论文作者
论文摘要
纠缠光子对对于量子技术中的许多应用至关重要。最近的理论研究表明,可以在不断驱动的四级量子发射极腔体系中创建不同类型的纠缠铃状状态。与其他候选者实现四级发射极不同,半导体量子点不可避免地与其环境相互作用,从而导致载体 - phonon相互作用。出乎意料的是,声子以定性的方式改变了发射光子对的纠缠,已经在低温下以4 k的速度更改。尽管仍然可以使用较小的驾驶强度产生一种钟状状态,但由于强烈限制的量子点中的声子相互作用而抑制了另一种类型。纠缠程度随温度和驱动强度的上升而降低,直到以一定的参数值消失。由于之后它保持零,因此我们遇到了类似于相变的纠缠和未输入的光子发射之间的声子诱导的过渡。过渡发生在30 K以下的温度下发生,并且与驱动强度无关,同意与降温的函数相关,以遵守指数在过渡点附近的指数。
Entangled photon pairs are essential for many applications in quantum technologies. Recent theoretical studies demonstrated that different types of entangled Bell states can be created in a constantly driven four-level quantum emitter-cavity system. Unlike other candidates for the realization of the four-level emitter, semiconductor quantum dots unavoidably interact with their environment, resulting in carrier-phonon interactions. Surprisingly, phonons change the entanglement of emitted photon pairs in a qualitative way, already at low temperatures on the order of 4 K. While one type of Bell state can still be generated using small driving strengths, the other type is suppressed due to phonon interactions in strongly-confined quantum dots. The degree of entanglement decreases with rising temperature and driving strength until it vanishes at a certain parameter value. Because it remains zero afterward, we encounter a phonon-induced transition between entangled and nonentangled photon emission that resembles a phase transition. The transition occurs at temperatures below 30 K and, independent of the driving strength, the concurrence as a function of the reduced temperature is found to obey a power law with exponent one near the transition point.