铷蒸气中0-0共振频率的取向光移实验估计

S. Ermak, R. Lozov, V. Semenov
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引用次数: 2

摘要

本文介绍了同位素抽运铷蒸气中射电光学0-0共振频率方向光移的测量结果。实验是在一个实验室量子鉴别器上进行的,该鉴别器的功能图包含了一个已知元素集,用于气电池上的铷频率标准。鉴别器放置在直径为50 cm的三对相同的亥姆霍兹线圈中,在气池区域产生10 μT、3 μT和1 μT的工作磁场。亥姆霍兹线圈被连接到交流电压源上,以产生相对于抽运光方向的法向旋转磁场。为了减弱外部磁噪声和实验室磁场的不均匀性,将整个系统置于屏蔽层中,屏蔽系数为~ 103,实际上可以排除残余磁场对测量精度的影响。主要实验结果如下:0-0型射光共振的方向频移与工作磁场大小无关,与抽运光强线性相关;当工作磁场垂直于量子鉴别器光轴方向时,光移的张量分量和标量分量具有相等(正)的符号,这在滤光片的任何温度下都导致它们无法补偿;当工作磁场沿量子鉴别器光轴方向时,光移的张量分量和标量分量具有相反的符号,这在滤光片的相应温度下导致它们可能(部分)补偿。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Orientational Light Shift Experimental Estimate of 0-0 Resonance Frequency in Rubidium Vapor
The paper presents the measurements results of the orientational light shift of the radio-optical 0-0 resonance frequency in the rubidium vapor with isotopic pumping. The experiments were done on a laboratory quantum discriminator, the functional diagram of which contained a known element set for rubidium frequency standard on a gas cell. The discriminator was placed in the three identical pairs of Helmholtz coils, 50 cm in diameter, which created a working magnetic field (10 μT, 3 μT, and 1 μT) in the area of the gas cell. Helmholtz coils were connected to alternating voltage sources to create a rotating magnetic field relative to the normal to the direction of the pumping light. To weaken external magnetic noise and inhomogeneities of the laboratory magnetic field, the entire system was placed in a magnetic shield with a screening factor of ~ 103, which practically made it possible to exclude the effect of the residual field on the measurements accuracy. The main experimental results are formulated as follows: the orientational frequency shift of the 0-0 radio-optical resonance does not depend on the magnitude of the working magnetic field and is linearly related to the pumping light intensity; when the working magnetic field is oriented normal to the quantum discriminator optical axis, the tensor and scalar components of the light shift have equal (positive) signs, which at any temperature of the filter-cell leads to their impossible compensation; when the working magnetic field is oriented along the quantum discriminator optical axis, the tensor and scalar components of the light shift have opposite signs, which at the corresponding temperature of the filter-cell leads to their possible (partial) compensation.
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