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An improved measurement of the electron electric dipole moment using YbF molecules.

An improved measurement of the electron electric dipole moment using YbF molecules.
使用 YbF 分子改进电子电偶极矩测量。
批准号:
EP/J011401/1
负责人:
Edward Hinds
金额:
$116.45万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2012
资助国家:
英国
项目状态:
已结题
起止时间:
2012 至 --

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中文摘要
翻译
我们已经开发出一种方法,通过仔细研究电子在电场中的行为来测量电子的形状。我们研究的每个电子都是一个分子(氟化Yb)的一部分,它放大了所施加的电场,也充当了一个锚,这样电子就不会被电场卷走。我们使用激光和射频场来准备电子在特定方向上的自旋。电场使这个自旋方向旋转一个取决于电子形状的量,我们测量这个旋转角。我们最近对电子形状进行了最灵敏的测量,现在我们计划利用我们的方法将测量精度提高20倍。这个原子物理实验将提供关于描述亚原子粒子的基本物理定律的重要新信息。我们还希望解开物理学中最大的谜团之一:为什么宇宙中的物质比反物质多得多。目前最好的粒子物理理论--标准模型--以惊人的精度预测了亚原子粒子的行为,但显然是不完整的。例如,它不包括重力的影响,它不能解释为什么不同的自然力具有如此大的不同强度,它也不能再现观察到的物质/反物质的不对称性。物理学家提出了许多扩展标准模型的想法,但我们不知道这些提出的理论中,如果有的话,哪一个是正确的。我们对电子形状的测量可以帮助解决这个问题,因为不同的提出的理论预测不同的形状。通过提高我们测量的准确性,我们可以检验这些理论。最受欢迎的理论观点之一就是超对称性。我们最近的测量已经排除了这一理论的一些版本。随着计划中的改进,我们的新测量将要么排除大多数版本的超对称性,要么提供一些证据证明超对称性是正确的。物理学家认为宇宙是从大爆炸开始的,大爆炸应该产生等量的物质和反物质,但今天我们只看到少量的反物质,来自不寻常的东西,如宇宙射线和放射性衰变。这是一个谜题,因为它暗示着支配物质和反物质的定律之间的不对称性,而这不在标准模型中。我们的测量是相关的,因为电子的形状对这种不对称非常敏感。即使是微小的差异也会严重扭曲形状,所以我们的测量可能有助于解开早期宇宙演化的这个谜团。
英文摘要
We have developed a method to measure the shape of the electron by carefully studying how it behaves when it is placed in an electric field. Each electron that we study is part of a molecule (ytterbium fluoride), which amplifies the applied electric field and also serves as an anchor so that the electron is not swept away by the field. We use lasers and radiofrequency fields to prepare the electron's spin in a particular direction. The electric field causes this spin direction to rotate by an amount that depends on the electron's shape, and we measure this angle of rotation. We have recently made the most sensitive measurement of the electron's shape and we now plan to exploit our method to improve the precision of the measurement by a factor of 20.This atomic physics experiment will provide important new information about the fundamental laws of physics that describe sub-atomic particles. We also hope to shed some light on one of the biggest mysteries in physics: why there is so much more matter than antimatter in the universe.The best theory of particle physics at the moment, the Standard Model, predicts the behaviour of sub-atomic particles with amazing accuracy, but it is obviously incomplete. For instance, it doesn't include the effects of gravity, it can't explain why the different forces of nature have such widely differing strengths, and it can't reproduce the observed matter/antimatter asymmetry. Physicists have proposed many ideas to extend the Standard Model, but we don't know which, if any, of these proposed theories is the right one.Our measurement of the electron's shape can help sort this out, because the different proposed theories predict different shapes. By increasing the accuracy of our measurement, we can test these theories. One of the favourite theoretical ideas is called supersymmetry. Our recent measurement has already ruled out some versions of this theory. With the planned improvement, our new measurement will either rule out most versions of supersymmetry, or will provide some evidence that supersymmetry is correct.Physicists think that the universe started with the big bang, which should have created equal amounts of matter and antimatter, yet today we only see tiny amounts of antimatter, coming from unusual things like cosmic rays and radioactive decay. This is a puzzle because it implies an asymmetry between the laws governing matter and antimatter that is not in the Standard Model. Our measurement is relevant because the shape of the electron is extremely sensitive to such an asymmetry. Even a tiny difference would distort the shape significantly, so our measurement may help to solve this mystery about the evolution of the early universe.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1088/1367-2630/17/1/015007
发表时间: 2014-08
期刊: New Journal of Physics
影响因子: 3.3
作者: [M. Tarbutt]
通讯作者: M. Tarbutt
DOI: 10.1039/c3cp51553b
发表时间: 2013-06
期刊: Physical chemistry chemical physics : PCCP
影响因子: --
作者: [N. Bulleid;S. M. Skoff;R. Hendricks;B. Sauer;E. Hinds;Michael Tarbutt]
通讯作者: N. Bulleid;S. M. Skoff;R. Hendricks;B. Sauer;E. Hinds;Michael Tarbutt
Stochastic multi-channel lock-in detection
随机多通道锁定检测
DOI: 10.1088/1367-2630/16/1/013005
发表时间: 2014
期刊: New Journal of Physics
影响因子: 3.3
作者: [Hudson J]
通讯作者: Hudson J
Low magnetic Johnson noise electric field plates for precision measurement.
用于精密测量的低磁约翰逊噪声电场板。
DOI: 10.1063/1.4966991
发表时间: 2016
期刊: The Review of scientific instruments
影响因子: --
作者: [Rabey IM]
通讯作者: Rabey IM
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