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首页> 外文期刊>Physics of plasmas >First principles simulation of ultracold ion crystals in a Penning trap with Doppler cooling and a rotating wall potential
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First principles simulation of ultracold ion crystals in a Penning trap with Doppler cooling and a rotating wall potential

机译:具有多普勒冷却和旋转壁电位造成覆盖陷阱中超级离子晶体的第一种原理模拟

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摘要

A direct numerical simulation of many interacting ions in a Penning trap with a rotating wall is presented. The ion dynamics is modeled classically. Both axial and planar Doppler laser cooling processes are modeled using stochastic momentum impulses based on two-level atomic scattering rates. The plasmas being modeled are ultracold two-dimensional crystals made up of hundreds of ions. We compare Doppler cooled results directly to a previous linear eigenmodes analysis. Agreement in both frequency and mode structure is obtained. Additionally, when Doppler laser cooling is applied, the laser cooled steady state plasma axial temperature agrees with the Doppler cooling limit. Numerical simulations using the approach described and benchmarked here will provide insights into the dynamics of large trapped-ion crystals, improving their performance as a platform for quantum simulation and sensing.
机译:提出了一种具有旋转壁的捏阱中许多相互作用离子的直接数值模拟。 离子动力学经典建模。 基于两级原子散射率的随机动量脉冲模型,轴向和平面多普勒激光冷却方法都是模拟的。 被建模的等离子体是超薄二维晶体由数百个离子组成。 我们将Dopper冷却结果与先前的线性eIgenmodes分析进行比较。 获得频率和模式结构的协议。 另外,当施加多普勒激光冷却时,激光冷却稳态等离子体轴向温度同意多普勒冷却极限。 使用此处描述和基准测试的方法的数值模拟将对大捕获离子晶体的动态进行了解,从而提高其作为量子模拟和传感平台的性能。

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