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Theory of double-resonance alignment magnetometers based on atomic high-order multipole moments using effective master equations

机译:基于原子高阶多极矩使用有效主级方程的双共振对准磁力计的理论

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We present a theoretical study of double-resonance alignment magnetometers using linearly polarized light, in which the effect of atomic high-order multipole moments is considered. Starting from the effective master equation of our system obtained by eliminating the excited state adiabatically, we derive the full evolution equations of the atomic multipole moments. The analytic solutions of resonance signals involving the four-order multipole moments effect are obtained by using the perturbation approach. We present that the four-order multipole moments effect is negligible in the weak laser field, and the results reduce to that obtained by a three-step approach. However, the role of four-order multipole moments coupled by two-order tensor moments is more significant with the increasing Rabi frequency of light, which cannot be ignored. Meanwhile, the analytic expressions of relaxation processes are also studied, which are a linear combination of the laser-induced equivalent relaxation rate Gamma(L) and the spin-exchange collision rate Gamma(g). The expected domain of validity of the three-step approach on light power is roughly given by Gamma(L) < 1/2 Gamma(g). In addition, the steady-state results of resonance signals are presented in a strong radio-frequency magnetic field; in that case, the physical mechanism of the splitting of resonance signals is discussed. These results are valid for arbitrary light power and for an arbitrarily oriented static magnetic field. (C) 2020 Optical Society of America
机译:本文从理论上研究了线偏振光双共振校准磁力仪,其中考虑了原子高阶多极矩的影响。从绝热消去激发态得到的系统有效主方程出发,导出了原子多极矩的完整演化方程。利用摄动方法,得到了考虑四阶多极矩效应的共振信号的解析解。我们提出,在弱激光场中,四阶多极矩效应是可以忽略的,并且结果简化为三步方法得到的结果。然而,随着光的拉比频率的增加,四阶多极矩与二阶张量矩耦合的作用更为显著,这是不可忽视的。同时,还研究了弛豫过程的解析表达式,即激光诱导的等效弛豫速率γ(L)和自旋交换碰撞速率γ(g)的线性组合。光功率三步法的预期有效范围大致由伽马(L)<1/2伽马(g)给出。此外,在强射频磁场中给出了共振信号的稳态结果;在这种情况下,讨论了共振信号分裂的物理机制。这些结果适用于任意光功率和任意方向的静磁场。(C) 2020美国光学学会

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