测量电子磁矩和电偶极矩的注意事项

Martin Rivas
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摘要

测量电子磁矩 $\mu$ 的目的是通过实验确定回旋磁比。系数$g/2$是通过精确测量两个频率(自旋前旋频率$\nu_s$和回旋频率$\nu_c$)计算得出的,定义为$\nu_s/\nu_c=g/2$。这些实验是在潘宁陷阱内封闭单个电子的情况下进行的。电偶极矩${d}_e$的存在,涉及沿自旋方向的不对称电荷分布,即${ d}_e=d_e{ S}/(\hbar/2)$ 。电子的电偶极子与巨大的有效电场{E}_{eff}$相互作用的能量偏移$\DeltaU=2{d}_eE_{eff}$,靠近重中性原子或分子的原子核,是通过自旋前驱测量确定的。通过使用量子化时满足狄拉克定序的旋转电子经典模型,我们以经典方法测定了该电子模型在均匀磁场和潘宁陷阱中运动时的电偶极矩和磁偶极矩的时间平均值,并得到了这些偶极矩的估计值。我们将这些结果与实验数据进行了比较,并对测得的偶极子作了一些解释。
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Considerations about the measurement of the magnetic moment and electric dipole moment of the electron
The goal of the measurement of the magnetic moment of the electron $\mu$, is to experimentaly determine the gyromagnetic ratio. The factor $g/2$ is computed by the accurate measurement of two frequencies, the spin precession frequency $\nu_s$, and the cyclotron frequency $\nu_c$, and is defined as $\nu_s/\nu_c=g/2$. These experiments are performed with a single electron confined inside a Penning trap. The existence of the electric dipole moment ${d}_e$, involves the idea of an asymmetric charge distribution along the spin direction such that ${ d}_e=d_e{ S}/(\hbar/2)$. The energy shift $\Delta U=2{d}_eE_{eff}$ of the interaction of the electric dipole of electrons with a huge effective electric field ${E}_{eff}$, close to the nucleus of heavy neutral atoms or molecules, is determined by a spin precession measurement. By using a classical model of a spinning electron, which satisfies Dirac's equation when quantized, we determine classically the time average value of the electric and magnetic dipole moments of this electron model when moving in a uniform magnetic field and in a Penning trap, with the same fields as in the real experiments, and obtain an estimated value of these dipoles. We compare these results with the experimental data and make some interpretation of the measured dipoles.
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