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Cyclotron frequency shifts arising from polarization forces

机译:极化力引起的回旋加速器频移

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The cyclotron frequency of a charged particle in a uniform magnetic field B is related to its mass m and charge q by the relationship omega(c) = qB/m. This simple relationship forms the basis for sensitive mass comparisons using ion cyclotron resonance mass spectroscopy, with applications ranging from the identification of biomolecules(1) and the study of chemical reaction rates(2) to determinations of the fine structure constant of atomic spectra(3). Here we report the observation of a deviation from the cyclotron frequency relationship for polarizable particles: in high-accuracy measurements of a single CO+ ion, a dipole induced in the orbiting ion shifts the measured cyclotron frequency. We use this cyclotron frequency shift to measure nondestructively the quantum state of the CO+ ion. The effect also provides a means to determine to a few per cent the body-frame dipole moment of CO+, thus establishing a method for measuring dipole moments of molecular ions for which few comparably accurate measurements exist(4-6). The general perturbation that we describe here affects the most precise mass comparisons attainable today(7,8), with applications including direct tests of Einstein's mass-energy relationship(9) and charge-parity-time reversal symmetry(10), and possibly the weighing of chemical bonds(7).
机译:在均匀磁场B中,带电粒子的回旋频率与质量m和电荷q相关,关系为omega(c)= qB / m。这种简单的关系构成了使用离子回旋共振质谱进行敏感质量比较的基础,其应用范围从生物分子的鉴定(1)和化学反应速率的研究(2)到确定原子光谱的精细结构常数(3) )。在这里,我们报告了可极化粒子与回旋加速器频率关系偏离的观察结果:在单个CO +离子的高精度测量中,在轨道离子中感应出的偶极子会改变测得的回旋加速器频率。我们使用回旋加速器频移来无损地测量CO +离子的量子态。这种效应还提供了一种方法,可将CO +的人体骨架偶极矩确定为百分之几,从而建立了一种测量分子离子偶极矩的方法,而该方法几乎没有相对精确的测量方法(4-6)。我们在此描述的一般扰动会影响当今可获得的最精确的质量比较(7,8),其应用包括直接测试爱因斯坦的质能关系(9)和电荷奇偶时反对称性(10),甚至可能是化学键的称量(7)。

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