首页> 外文会议>Workshop on Non-Neutral Plasmas, Jul 30-Aug 2, 2001, San Diego, California >Quadrupole Induced Resonant Particle Transport in a Pure Electron Plasma
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Quadrupole Induced Resonant Particle Transport in a Pure Electron Plasma

机译:纯电子等离子体中的四极诱导共振粒子传输

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We performed experiments that explore the effects of a quadrupole magnetic field on a pure electron plasma confined in a Malmberg-Penning trap. This work is important both as an example of resonant particle transport and for antihydrogen (H). The H experiments plan to use magnetic quadrupole neutral atom traps to confine H atoms created in double-well positron/antiproton Malmberg-Penning traps. Our results show that a quadrupole field of only 0.020 G/cm can cause significant transport when applied to a 1 cm radius plasma confined by an axial field of 100 G. Our model describes the shape of the plasma and shows that resonant electrons follow trajectories that take them on large radial excursions, leading to enhanced transport. If the electrons are off resonance, then diffusion will not be greatly enhanced. The measured diffusion scales like the square of the quadrupole field strength, inversely like the square of the axial magnetic field and, below resonance, like the square of the E x B rotation frequency. The location of the resonance in parameter space scales accordingly as we vary the length and temperature of the plasma. However, the temperature used in fitting the data differs from the independently measured temperature by a factor of four, suggesting that our description of the effect as purely diffusive is not correct.
机译:我们进行了探索四极磁场对封闭在Malmberg-Penning阱中的纯电子等离子体的影响的实验。这项工作对于共振粒子传输的例子以及抗氢(H)都是重要的。 H实验计划使用磁性四极中性原子陷阱来限制在双阱正电子/反质子Malm​​berg-Penning陷阱中产生的H原子。我们的结果表明,仅将0.020 G / cm的四极场施加到半径为100 G的轴向场限制的1 cm半径的等离子体中时,就会引起显着传输。我们的模型描述了等离子体的形状,并表明共振电子遵循的轨迹带他们进行较大的径向偏移,从而提高了运输效率。如果电子不共振,则扩散将不会大大增强。测得的扩散比例像四极磁场强度的平方,反之像轴向磁场的平方,而在共振以下,像E x B旋转频率的平方。随着我们改变等离子体的长度和温度,共振在参数空间中的位置相应地缩放。但是,用于拟合数据的温度与独立测量的温度相差四倍,这表明我们对这种影响的描述是纯扩散的,这是不正确的。

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