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利用激光冷却多原子分子对时间反演对称性破缺进行精确测量。

Precision Measurement of Time-Reversal Symmetry Violation with Laser-Cooled Polyatomic Molecules.

作者信息

Kozyryev Ivan, Hutzler Nicholas R

机构信息

Department of Physics, Harvard University, Cambridge, Massachusetts 02138, USA.

Division of Physics, Mathematics, and Astronomy, California Institute of Technology, Pasadena, California 91125, USA.

出版信息

Phys Rev Lett. 2017 Sep 29;119(13):133002. doi: 10.1103/PhysRevLett.119.133002. Epub 2017 Sep 28.

Abstract

Precision searches for time-reversal symmetry violating interactions in polar molecules are extremely sensitive probes of high energy physics beyond the standard model. To extend the reach of these probes into the PeV regime, long coherence times and large count rates are necessary. Recent advances in laser cooling of polar molecules offer one important tool-optical trapping. However, the types of molecules that have been laser cooled so far do not have the highly desirable combination of features for new physics searches, such as the ability to fully polarize and the existence of internal comagnetometer states. We show that by utilizing the internal degrees of freedom present only in molecules with at least three atoms, these features can be attained simultaneously with molecules that have simple structure and are amenable to laser cooling and trapping.

摘要

在极性分子中对违反时间反演对称性相互作用的精确搜索是超出标准模型的高能物理学极其灵敏的探测器。为了将这些探测器的探测范围扩展到PeV能区,长相干时间和高计数率是必要的。极性分子激光冷却的最新进展提供了一种重要工具——光学捕获。然而,迄今为止已被激光冷却的分子类型并不具备用于新物理搜索的极为理想的特征组合,例如完全极化的能力和内部共磁强计态的存在。我们表明,通过利用仅存在于至少有三个原子的分子中的内自由度,这些特征可以在具有简单结构且适合激光冷却和捕获的分子中同时实现。

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