CAREER: Rotational Cooling of Radioactive Molecules
CAREER: Rotational Cooling of Radioactive Molecules
批准号:
2146555
负责人:
Andrew Jayich
金额:
$73.58万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2022
资助国家:
美国
项目状态:
未结题
起止时间:
2022-07-01 至 2027-06-30
中文摘要
该奖项全部或部分根据2021年美国救援计划法案(公法117-2)资助。 一般观众摘要:我们知道,在宇宙的开始有相互作用,我们的存在是必要的,这违反了时间对称性。 但是,我们还没有发现这些过程是什么。 一些重放射性元素有望揭示这些相互作用的本质,因为它们对违反物理学的时间对称性的敏感性增强。 镭就是这样一种元素,当它被掺入分子中时,对时间对称性破坏的敏感性会进一步放大。 实验将测量两种不同构型的分子态的能量:当镭核与分子的电场对齐时,以及当原子核与电场反对齐时。 两种构型之间的能量差限制了违反时间对称性的相互作用。由于镭和镭基分子的放射性,迄今为止对它们的研究很少。 PI和他的学生将建立在镭离子的最新进展的基础上,以提供离子重要的低能电子能级的完整图像。 此外,该团队还将研究镭基分子的旋转结构,并努力以尽可能高的精度控制这些放射性分子。 此外,PI和他的学生将领导会议,以改善维基百科的科学文章(免费访问),重点是原子物理学领域。 这些努力将为研究生、本科生和高中生提供宝贵的培训和学习机会。技术观众摘要:在这个项目中,PI和他的学生旨在测量镭离子的基本性质,研究和控制分子离子RaH+的旋转结构。 他们将测量镭离子的7P_1/2、6D_3/2和6D_5/2态寿命。 7P_1/2和6D_3/2态的寿命还没有测量,6D_5/2态的寿命只有一个下限。 这些测量将提供Ra+的重要低位激发态的完整图像,这对于该离子的高级工作非常重要。 除了研究镭离子外,该团队还将使用Ra+来产生和冷却捕获的RaH+分子离子。通过光学频率梳,该团队将驱动分子旋转状态之间的受激拉曼跃迁,以研究旋转结构。 他们将能够通过可控地驱动旋转状态之间的转变来构建旋转测量,以填充RaH+的目标旋转状态。 旋转光谱学和控制的进步将打开大门,以高精度的光谱学的重放射性分子,这是呼吁约束时间对称性违反,这是重要的理解重子生成和强CP问题。这个奖项反映了NSF的法定使命,并已被认为是值得的支持,通过评估使用基金会的智力价值和更广泛的影响审查标准。
英文摘要
This award is funded in whole or in part under the American Rescue Plan Act of 2021 (Public Law 117-2). General audience abstract:We know that in the beginning of the Universe there were interactions, necessary for our existence, that violated time symmetry. But, we have yet to discover what these processes were. A few heavy radioactive elements hold promise to uncover the nature of these interactions because of enhanced sensitivity to time symmetry violating physics. Radium is one such element, and when incorporated into a molecule the sensitivity to time symmetry violation is further amplified. An experiment would measure the energy of molecular states in two different configurations: when the radium nucleus is aligned with the molecule’s electric field, and when the nucleus is anti-aligned with the electric field. The energy difference between the two configurations constrains time symmetry violating interactions. Because of their radioactivity radium and radium-based molecules have so far been little-studied. The PI and his students will build on recent advances with the radium ion to provide a complete picture of the ion's important low-energy electronic levels. Further, the team will study the rotational structure of radium-based molecules, and work towards controlling these radioactive molecules with the finest precision possible. Additionally, the PI and his students will lead sessions to improve Wikipedia science articles (freely accessible), with a focus on the field of atomic physics. These efforts will provide valuable training and learning opportunities for graduate students, undergraduate students, and high school students.Technical audience abstract:In this project the PI and his students aim to measure basic properties of the radium ion, and study and control the rotational structure of the molecular ion RaH+. They will measure the radium ion's 7P_1/2, 6D_3/2, and 6D_5/2 state lifetimes. The 7P_1/2 and 6D_3/2 lifetimes have yet to be measured, and there only exists a lower bound on the 6D_5/2 state. These measurements will provide a complete picture of the important low-lying excited states of Ra+, which is important for advanced work with this ion. In addition to studying the radium ion, the team will use Ra+ to produce and cool trapped RaH+ molecular ions. With an optical frequency comb the team will drive stimulated Raman transitions between rotational states of the molecule to study the rotational structure. They will be able to build upon the rotational measurements by controllably driving transitions between rotational states to populate a target rotational state of RaH+. The advances in rotational spectroscopy and control will open the door to high precision spectroscopy of heavy radioactive molecules which are appealing for constraining time symmetry violation that is important for understanding baryogenesis and the strong CP problem.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
Measurement of the Ra+ 7p2P3/2 state lifetime
Ra 7p2P3/2 态寿命的测量
DOI:
10.1103/physreva.105.042801
发表时间:
2022
期刊:
Physical Review A
影响因子:
2.9
作者:
[Fan, M., Holliman, C. A., Contractor, A., Zhang, C., Gebretsadken, S. F., Jayich, A. M.]
通讯作者:
Jayich, A. M.
QuSeC-TAQS: Novel Quantum Algorithms for Optical Atomic Clocks
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批准号:2326810
-
项目类别:Continuing Grant
-
资助金额:$175.92万
-
财政年份:2023
-
负责人:Andrew Jayich
-
依托单位:
Developing a Radium Toolset for New Physics
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批准号:1912665
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项目类别:Standard Grant
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资助金额:$51.1万
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财政年份:2019
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负责人:Andrew Jayich
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依托单位:
海外基金