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首页> 外文期刊>Bulletin of the American Physical Society >APS -Annual Meeting of the APS Four Corners Section- Event - Probing Many-Body Physics in an Optical Lattice Clock
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APS -Annual Meeting of the APS Four Corners Section- Event - Probing Many-Body Physics in an Optical Lattice Clock

机译:APS-anual会议APS四角部分 - 事件 - 在光学格时钟中探测许多身体物理

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My graduate research has focused on experiments with atomic clocks. Advances in atomic, molecular, and optical (AMO) physics push the frontiers of atomic clock research and offer exciting research opportunities. At the same time, atomic clocks now provide us with sensitive measurement tools, accurate navigation through the Global Positioning System (GPS), and are vital for many internet based applications. The base unit of time, the second, is now derived from a microwave transition frequency in cesium. However, the systematic uncertainty of the most advanced clocks based on optical transitions now surpass those of the cesium atomic standards. These transition frequencies are effected by environmental perturbations which include, for example, the local electric and magnetic field environment. For the case of optical lattice atomic clocks, multiple atoms are confined together within a standing wave of light and the atom-atom and atom-light interactions both need to be considered. My PhD research focuses on studies of these interactions. These studies not only help to understand the systematic shifts these clocks experience but also allow the simulation of many-body Hamiltonians and dipolar interactions and are therefore pushing the frontiers of AMO physics.
机译:我的研究生研究专注于原子钟的实验。原子,分子和光学(AMO)物理的进展推动原子钟研究的前沿,并提供令人兴奋的研究机会。与此同时,原子钟现在为我们提供敏感的测量工具,通过全球定位系统(GPS)准确导航,对许多基于互联网的应用至关重要。基本单位的时间单位,第二个,现在来自铯中的微波转换频率。然而,基于光学过渡的最先进时钟的系统不确定性现在超越了铯原子标准的不确定。这些过渡频率由环境扰动实现,其包括例如局部电场和磁场环境。对于光学晶格原子时钟的情况下,多个原子在光的驻波内被限制在一起,并且需要考虑原子原子和原子 - 光相互作用。我的博士学研究致力于研究这些相互作用。这些研究不仅有助于了解这些时钟的体验,而且还允许模拟许多身体汉密尔顿人和偶极交互,因此正在推动amo物理的前沿。

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