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首页> 外文期刊>Physical Review, A >Heating and cooling of electrons in an ultracold neutral plasma using Rydberg atoms
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Heating and cooling of electrons in an ultracold neutral plasma using Rydberg atoms

机译:使用Rydberg原子加热和冷却电子中的电子中的电子

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We have experimentally demonstrated both heating and cooling of electrons in an ultracold neutral plasma (UNP) by embedding Rydberg atoms into the plasma soon after its creation.We have determined the relationship between the initial electron temperature, T_(e,i) , and the binding energy of the added Rydberg atoms, E_b, at the crossover between heating and cooling behaviors (that is, the binding energy of the atoms, which, when they are added to the plasma, neither accelerate nor slow down the plasma expansion). Specifically, this condition is |E_b| ≈ 2.7 × k_BT_(e,i) when the diagnostic used is the effect of the Rydberg atoms on the plasma asymptotic expansion velocity. Additionally, we have obtained experimental estimates for the amount of heating or cooling which occurs when the Rydberg binding energy does not satisfy the crossover condition. The experimental results for the crossover condition, and the degree of heating or cooling away from the crossover, are in agreement with predictions obtained from numerical modeling of the interactions between Rydberg atoms and the plasma. We have also developed a simple intuitive picture of how the Rydberg atoms affect the plasma, which supports the concept of a "bottleneck" in the Rydberg state distribution of atoms in equilibrium with a coexisting plasma.
机译:我们已经实验证明加热和通过嵌入里德伯原子到等离子体其creation.We人已经确定,T_(E,i)所述初始电子温度之间的关系后不久在超冷中性等离子体(UNP)电子的冷却,对在交叉地加热和冷却的行为之间的结合加入里德伯原子的能量,E_B,(即,原子,其中,当它们被添加到等离子体中,既不加速也不减速等离子体膨胀的结合能)。具体而言,这种情况是| E_B | ≈2.7×k_BT_(E,i)当所述诊断使用的是在等离子体渐近膨胀速度里德伯原子的效果。此外,我们已经获得的实验估计用于加热或冷却时里德伯结合能不满足交叉条件发生的量。为交叉状态,并加热或从交叉冷却离开的程度的实验结果,是与来自里德伯原子和等离子体之间的相互作用的数值模拟获得的预测一致。我们还开发的里德伯原子是如何影响等离子体,它支持在原子的平衡与共存等离子里德堡态分布的“瓶颈”的概念,简单直观的图片。

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