Kara Dushmanta, Bhowmick Arup, Mohapatra Ashok K
School of Physical Sciences, National Institute of Science Education and Research Bhubaneswar, HBNI, Jatni, 752050, India.
Sci Rep. 2018 Mar 27;8(1):5256. doi: 10.1038/s41598-018-23559-0.
We present the experimental demonstration of interaction induced enhancement in Rydberg excitation or Rydberg anti-blockade in thermal atomic vapor. We have used optical heterodyne detection technique to measure Rydberg population due to two-photon excitation to the Rydberg state. The anti-blockade peak which doesn't satisfy the two-photon resonant condition is observed along with the usual two-photon resonant peak which can't be explained using the model with non-interacting three-level atomic system. A model involving two interacting atoms is formulated for thermal atomic vapor using the dressed states of three-level atomic system to explain the experimental observations. A non-linear dependence of vapor density is observed for the anti-blockade peak which also increases with increase in principal quantum number of the Rydberg state. A good agreement is found between the experimental observations and the proposed interacting model. Our result implies possible applications towards quantum logic gates using Rydberg anti-blockade in thermal atomic vapor.
我们展示了在热原子蒸气中相互作用诱导的里德堡激发增强或里德堡反阻塞的实验证明。我们使用光学外差检测技术来测量由于双光子激发到里德堡态而产生的里德堡布居数。除了通常的双光子共振峰外,还观察到了不满足双光子共振条件的反阻塞峰,这无法用非相互作用三能级原子系统的模型来解释。利用三能级原子系统的缀饰态为热原子蒸气建立了一个涉及两个相互作用原子的模型,以解释实验观测结果。观察到反阻塞峰对蒸气密度的非线性依赖关系,并且该峰也随着里德堡态主量子数的增加而增大。实验观测结果与所提出的相互作用模型之间取得了良好的一致性。我们的结果意味着在热原子蒸气中利用里德堡反阻塞实现量子逻辑门的潜在应用。