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Antihydrogen formation by autoresonant excitation of antiproton plasmas

机译:通过反共振激发质子等离子体形成氢

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In efforts to trap antihydrogen, a key problem is the vast disparity between the neutral trap energy scale ( $sim!50,upmumathrm{eV}$ ), and the energy scales associated with plasma confinement and space charge (~1 eV). In order to merge charged particle species for direct recombination, the larger energy scale must be overcome in a manner that minimizes the initial antihydrogen kinetic energy. This issue motivated the development of a novel injection technique utilizing the inherent nonlinear nature of particle oscillations in our traps. We demonstrated controllable excitation of the center-of-mass longitudinal motion of a thermal antiproton plasma using a swept-frequency autoresonant drive. When the plasma is cold, dense and highly collective in nature, we observe that the entire system behaves as a single-particle nonlinear oscillator, as predicted by a recent theory. In contrast, only a fraction of the antiprotons in a warm or tenuous plasma can be similarly excited. Antihydrogen was produced and trapped by using this technique to drive antiprotons into a positron plasma, thereby initiating atomic recombination. The nature of this injection overcomes some of the difficulties associated with matching the energies of the charged species used to produce antihydrogen.
机译:在努力捕集氢的过程中,一个关键问题是中性阱能级(sim!50,upmumathrm {eV} $)与与等离子体约束和空间电荷相关的能级(〜1 eV)之间存在巨大差异。为了合并带电粒子种类以进行直接重组,必须以最小化初始抗氢动能的方式克服较大的能量规模。这个问题促使我们开发了一种新颖的注入技术,该技术利用了阱中粒子振动固有的非线性特性。我们展示了使用扫频自谐振驱动器对热反质子等离子体的质心纵向运动的可控激发。当等离子体本质上是冷的,稠密的和高度集合的时,我们观察到整个系统的行为就像一个单粒子非线性振荡器一样,正如最近的理论所预测的那样。相反,在温暖或微弱的血浆中仅一部分反质子可以被类似地激发。通过使用该技术将反质子驱动到正电子等离子体中,产生并捕获了氢,从而引发了原子重组。这种注入的性质克服了与匹配用于产生抗氢的带电物质的能量相关的一些困难。

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