论文标题
手性环环境中的间歇性破坏封锁
Intermittent decoherence blockade in a chiral ring environment
论文作者
论文摘要
长期以来,人们已经认识到,原子辐射的排放不是单个原子本身的内在特性,而是受光子环境的特征和原子之间的集体相互作用的很大程度上影响。一种普遍的信念是,防止完全衰减和/或腐烂需要黑暗状态,即尽管环境耗散的环境,这些状态的穿着光原子状态不会衰减。在这里,我们表明,与这种共同的智慧相反,当原子与手性环环境耦合时,可以间歇性地在有限的时间范围内实现破裂的抑制,而无需任何黑暗状态,从而导致高度非指数的楼梯衰减。这种效果称为间歇性的分层阻断,是由当前发出的光与过去发出的光(即延迟相干量子反馈反馈延迟发出的光之间的周期性破坏性干扰)产生的。
It has long been recognized that emission of radiation from atoms is not an intrinsic property of individual atoms themselves, but it is largely affected by the characteristics of the photonic environment and by the collective interaction among the atoms. A general belief is that preventing full decay and/or decoherence requires the existence of dark states, i.e., dressed light-atom states that do not decay despite the dissipative environment. Here, we show that, contrary to such a common wisdom, decoherence suppression can be intermittently achieved on a limited time scale, without the need for any dark state, when the atom is coupled to a chiral ring environment, leading to a highly non-exponential staircase decay. This effect, that we refer to as intermittent decoherence blockade, arises from periodic destructive interference between light emitted in the present and light emitted in the past, i.e., from delayed coherent quantum feedback.