【2h】

Paul trapping of charged particles in aqueous solution

机译:保罗将带电粒子捕获在水溶液中

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摘要

We experimentally demonstrate the feasibility of an aqueous Paul trap using a proof-of-principle planar device. Radio frequency voltages are used to generate an alternating focusing/defocusing potential well in two orthogonal directions. Individual charged particles are dynamically confined into nanometer scale in space. Compared with conventional Paul traps working in frictionless vacuum, the aqueous environment associated with damping forces and thermally induced fluctuations (Brownian noise) exerts a fundamental influence on the underlying physics. We investigate the impact of these two effects on the confining dynamics, with the aim to reduce the rms value of the positional fluctuations. We find that the rms fluctuations can be modulated by adjusting the voltages and frequencies. This technique provides an alternative for the localization and control of charged particles in an aqueous environment.
机译:我们通过实验证明了使用原理证明平面装置进行水Paul捕集阱的可行性。射频电压用于在两个正交方向上很好地产生交替的聚焦/散焦电位。单个带电粒子被动态限制在空间中的纳米级。与在无摩擦真空中工作的传统Paul捕集阱相比,与阻尼力和热引起的波动(布朗噪声)相关的水环境对基础物理产生了根本影响。我们研究了这两种影响对约束动力学的影响,目的是减小位置波动的均方根值。我们发现可以通过调节电压和频率来调制均方根波动。该技术为水性环境中带电粒子的定位和控制提供了一种替代方法。

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