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Blackbody radiation shift assessment for a lutetium ion clock

机译:body离子钟的黑体辐射偏移评估

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摘要

The accuracy of state-of-the-art atomic clocks is derived from the insensitivity of narrow optical atomic resonances to environmental perturbations. Two such resonances in singly ionized lutetium have been identified with potentially lower sensitivities compared to other clock candidates. Here we report measurement of the most significant unknown atomic property of both transitions, the static differential scalar polarizability. From this, the fractional blackbody radiation shift for one of the transitions is found to be −1.36(9) × 10−18 at 300 K, the lowest of any established optical atomic clock. In consideration of leading systematic effects common to all ion clocks, both transitions compare favorably to the most accurate ion-based clocks reported to date. This work firmly establishes Lu+ as a promising candidate for a future generation of more accurate optical atomic clocks.
机译:最先进的原子钟的准确性源自狭窄的光学原子共振对环境扰动的不敏感性。与其他候选时钟相比,单离子化中的两个此类共振可能具有较低的灵敏度。在这里,我们报告了两个跃迁的最重要的未知原子特性的测量值,即静态差分标量极化率。据此,发现其中一个跃迁的分数黑体辐射位移在300 K时为−1.36(9)×10 −18 ,是所有已建立的光学原子钟中的最低值。考虑到所有离子钟共有的领先系统效应,这两个跃迁均优于迄今为止报道的最精确的基于离子的钟。这项工作牢固地确立了Lu + 作为有希望的候选者的机会,以便将来产生更精确的光学原子钟。

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