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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Slowing and cooling of heavy or light (even with a tiny electric dipole moment) polar molecules using a novel, versatile electrostatic Stark decelerator
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Slowing and cooling of heavy or light (even with a tiny electric dipole moment) polar molecules using a novel, versatile electrostatic Stark decelerator

机译:使用新型多功能静电斯塔克减速器减慢或冷却重或轻(即使有微小的电偶极矩)极性分子

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摘要

To meet some demands for realizing precise measurements of an electric dipole moment of electron (eEDM) and examining cold collisions or cold chemical physics, we have proposed a novel, versatile electrostatic Stark decelerator with an array of true 3D electric potential wells, which are created by a series of horizontally-oriented, U-shaped electrodes with time-sequence controlling high voltages (+/- HV) and two guiding electrodes with a constant voltage. We have calculated the 2D electric field distribution, the Stark shifts of the four lowest rotational sub-levels of PbF molecules in the X-1(2)Pi(1/2)(v = 0) electronic and vibrational ground states as well as the population in the different rotational levels. We have discussed the 2D longitudinal and transverse phase-space acceptances of PbF molecules in our decelerator. Subsequently, we have simulated the dynamic processes of the decelerated PbF molecules using the 3D Monte-Carlo method, and have found that a supersonic PbF beam with a velocity of 300 m s(-1) can be efficiently slowed to about 5 m s(-1), which will greatly enhance the sensitivities to research a parity violation and measure an eEDM. In addition, we have investigated the dependences of the longitudinal velocity spread, longitudinal temperature and bunching efficiency on both the number of guiding stages and high voltages, and found that after bunching, a cold packet of PbF molecules in the J = 7/2, M Omega = -7/4 state with a longitudinal velocity spread of 0.69 m s(-1) (corresponding to a longitudinal temperature of 2.35 mK) will be produced by our high-efficient decelerator, which will generate a high energy-resolution molecular beam for studying cold collision physics. Finally, our novel decelerator can also be used to efficiently slow NO molecules with a tiny electric dipole moment (EDM) of 0.16 D from 315 m s(-1) to 28 m s(-1). It is clear that our proposed new decelerator has a good slowing performance and experimental feasibility as well as wide applications in the field of precise measurements and cold molecule physics.
机译:为了满足实现电子电偶极矩(eEDM)的精确测量并检查冷碰撞或冷化学物理的一些需求,我们提出了一种新颖的,多功能的静电斯塔克减速器,该减速器具有一系列真实的3D电势阱,通过一系列具有时间顺序控制高压(+/- HV)的水平定向U形电极和两个具有恒定电压的导向电极。我们已经计算了二维电场分布,X-1(2)Pi(1/2)(v = 0)电子和振动基态中PbF分子的四个最低旋转子级的Stark位移以及不同轮换级别的人口。我们已经讨论了减速器中PbF分子的二维纵向和横向相空间接受度。随后,我们使用3D蒙特卡罗方法模拟了减速的PbF分子的动力学过程,发现速度为300 ms(-1)的超音速PbF束可以有效地减慢到大约5 ms(-1) ),这将大大提高研究均等违规和衡量eEDM的敏感性。此外,我们研究了纵向速度分布,纵向温度和聚束效率对导向级数和高压的依赖性,发现聚束后,J = 7/2的PbF分子呈冷态包,我们的高效减速器将产生M Omega = -7/4状态,其纵向速度扩展为0.69 ms(-1)(对应于纵向温度为2.35 mK),它将产生高能量分辨率的分子束用于研究冷碰撞物理。最后,我们的新型减速器还可用于以315 m s(-1)至28 m s(-1)的0.16 D微小电偶极矩(EDM)有效地减慢NO分子。显然,我们提出的新型减速器具有良好的减速性能和实验可行性,并且在精密测量和冷分子物理领域具有广泛的应用。

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