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Spin exchange optical pumping of neon and its applications.

机译:氖的自旋交换光学泵浦及其应用。

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摘要

Hyperpolarized noble gases are used in a variety of applications including medical diagnostic lung imaging, tests of fundamental symmetries, spin filters, atomic gyroscopes, and atomic magnetometers. Typically 3He is utilized because large 3He polarizations on the order of 80% can be achieved. This is accomplished by optically pumping an alkali vapour which polarizes a noble gas nucleus via spin exchange optical pumping.;One hyperpolarized noble gas application of particular importance is the K-3He co-magnetometer. Here, the alkali atoms optically pump a diamagnetic noble gas. The magnetic holding field for the alkali and noble gas is reduced until both species are brought into hybrid magnetic resonance. The co-magnetometer exhibits many useful attributes which make it ideal for tests of fundamental physics, such as insensitivity to magnetic fields.;The co-magnetometer would demonstrate increased sensitivity by replacing 3He with polarized 21Ne gas. Tests of CPT violation using co-magnetometers would be greatly improved if one utilizes polarized 21Ne gas. The sensitivity of the nuclear spin gyroscope is inversely proportional to the gyromagnetic ratio of the noble gas. Switching to neon would instigate an order of magnitude gain in sensitivity over 3He.;In order to realize these applications the interaction parameters of 21Ne with alkali metals must be measured. The spin-exchange cross section sigmase, and magnetic field enhancement factor kappa0 are unknown, and have only been theoretically calculated. There are no quantitative predictions of the neon-neon quadrupolar relaxation rate Gammaquad.;In this thesis I test the application of a K-3He co-magnetometer as a navigational gyroscope. I discuss the advantages of switching the buffer gas to 21Ne. I discuss the feasibility of utilizing polarized 21Ne for operation in a co-magnetometer, and construct a prototype 21Ne co-magnetometer. I investigate polarizing 21Ne with optical pumping via spin exchange collisions and measure the spin exchange rate coefficient of K and Rb with Ne to be 2.9 x 10-20cm 3/s and 0.81 x 10-19cm3/s. We measure the magnetic field enhancement factor kappa0 to be 30.8 +/- 2.7, and 35.7 +/- 3.7 for the K-Ne, and the Rb-Ne pair. We measure the quadrupolar relaxation coefficient to be 214 +/- 10 Amagat˙s. Furthermore the spin destruction cross section of Rb, and K with 21 Ne is measured to be 1.9 x 10-23cm2 and 1.1 x 10-23cm2.
机译:超极化稀有气体用于多种应用,包括医学诊断性肺部成像,基本对称性测试,自旋过滤器,原子陀螺仪和原子磁力计。通常使用3He,因为可以实现80%左右的大3He极化。这是通过自旋交换光学泵浦光学泵浦使稀有气体核极化的碱蒸汽来实现的。一种特别重要的超极化惰性气体应用是K-3He磁力仪。在此,碱原子光学泵浦反磁性稀有气体。减少碱和稀有气体的磁场,直到两种物质都进入混合磁共振。同轴磁力仪具有许多有用的属性,使其非常适合基本物理测试,例如对磁场不敏感。同轴磁力仪可以通过用极化的21Ne气体代替3He来提高灵敏度。如果使用极化的21Ne气体,将大大改善使用共磁计进行的违反CPT的测试。核自旋陀螺仪的灵敏度与稀有气体的旋磁比成反比。改用氖气会在3He以上的灵敏度上提高一个数量级。为了实现这些应用,必须测量21Ne与碱金属的相互作用参数。自旋交换截面的sigmase和磁场增强因子kappa0是未知的,仅在理论上进行了计算。霓虹四极杆弛豫率Gammaquad尚无定量预测。在本论文中,我测试了K-3He同轴磁力计作为导航陀螺仪的应用。我将讨论将缓冲气体切换为21Ne的优势。我讨论了利用极化21Ne在共磁计中进行操作的可行性,并构建了原型21Ne共磁计。我通过光泵浦通过自旋交换碰撞研究偏振21Ne,并测量K和Rb与Ne的自旋交换速率系数分别为2.9 x 10-20cm 3 / s和0.81 x 10-19cm3 / s。我们测量的磁场增强因子kappa0为30.8 +/- 2.7,而K-Ne和Rb-Ne对为35.7 +/- 3.7。我们测得四极弛豫系数为214 +/- 10 Amagats。此外,测得Rb和具有21 Ne的K的自旋破坏截面为1.9×10-23cm 2和1.1×10-23cm 2。

著录项

  • 作者

    Ghosh, Rajat K.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Physics Atomic.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 153 p.
  • 总页数 153
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:38:30

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