Beloy K, Dzuba V A, Brewer S M
National Institute of Standards and Technology, Boulder, Colorado 80305, USA.
School of Physics, University of New South Wales, Sydney 2052, Australia.
Phys Rev Lett. 2020 Oct 23;125(17):173002. doi: 10.1103/PhysRevLett.125.173002.
We identify Ba^{4+} (Te-like) as a promising candidate for a high-accuracy optical clock. The lowest-lying electronic states are part of a ^{3}P_{J} fine structure manifold with anomalous energy ordering, being nonmonotonic in J. We propose a clock based on the 338.8 THz electric quadrupole transition between the ground (^{3}P_{2}) and first-excited (^{3}P_{0}) electronic states. We perform relativistic many-body calculations to determine relevant properties of this ion. The lifetime of the excited clock state is found to be several seconds, accommodating low statistical uncertainty with a single ion for practical averaging times. The differential static scalar polarizability is found to be small and negative, providing suppressed sensitivity to blackbody radiation while simultaneously allowing cancellation of Stark and excess micromotion shifts. With the exception of Hg^{+} and Yb^{+}, sensitivity to variation of the fine structure constant is greater than other optical clocks thus far demonstrated.
我们确定Ba⁴⁺(类碲)是高精度光学时钟的一个有前景的候选者。最低电子态是具有反常能量排序的³P_J精细结构多重态的一部分,在J中是非单调的。我们提出一种基于基态(³P₂)和第一激发态(³P₀)电子态之间338.8太赫兹电四极跃迁的时钟。我们进行相对论多体计算以确定该离子的相关性质。发现激发时钟态的寿命为几秒,对于实际平均时间,单个离子可实现低统计不确定性。发现微分静态标量极化率小且为负,这在抑制对黑体辐射的敏感性的同时,还能消除斯塔克和过量微运动频移。除Hg⁺和Yb⁺外,对精细结构常数变化的敏感性比迄今为止展示的其他光学时钟更大。