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Laser spectroscopy of indium Rydberg atom bunches by electric field ionization

机译:电场电离铟雷德伯格原子束的激光光谱

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This work reports on the application of a novel electric field-ionization setup for high-resolution laser spectroscopy measurements on bunched fast atomic beams in a collinear geometry. In combination with multi-step resonant excitation to Rydberg states using pulsed lasers, the field ionization technique demonstrates increased sensitivity for isotope separation and measurement of atomic parameters over previous non-resonant laser ionization methods. The setup was tested at the Collinear Resonance Ionization Spectroscopy experiment at ISOLDE-CERN to perform high-resolution measurements of transitions in the indium atom from the $$ext {5s}^2ext {5d},^2ext {D}_{5/2}$$ and $$ext {5s}^2ext {5d},^2ext {D}_{3/2}$$ states to $$ext {5s}^2n$$p?$$^2$$P and $$ext {5s}^2next {f},^2$$F Rydberg states, up to a principal quantum number of $$n=72$$. The extracted Rydberg level energies were used to re-evaluate the ionization potential of the indium atom to be $$46,670.107(4),hbox {cm}^{-1}$$. The nuclear magnetic dipole and nuclear electric quadrupole hyperfine structure constants and level isotope shifts of the $$ext {5s}^2ext {5d},^2ext {D}_{5/2}$$ and $$ext {5s}^2ext {5d},^2ext {D}_{3/2}$$ states were determined for $$^{113,115}$$In. The results are compared to calculations using relativistic coupled-cluster theory. A good agreement is found with the ionization potential and isotope shifts, while disagreement of hyperfine structure constants indicates an increased importance of electron correlations in these excited atomic states. With the aim of further increasing the detection sensitivity for measurements on exotic isotopes, a systematic study of the field-ionization arrangement implemented in the work was performed at the same time and an improved design was simulated and is presented. The improved design offers increased background suppression independent of the distance from field ionization to ion detection.
机译:该工作报告了新型电场电离设置在共线几何中束缚的快速原子束上的高分辨率激光光谱测量的应用。结合使用脉冲激光器对Rydberg状态的多步骤共振激发,现场电离技术表明同位素分离和原子参数的敏感性增加了先前的非共振激光电离方法。在Isolde-Cern的Conlinear Aronance电离光谱实验中测试了设置,以从$$ text {5s} ^ 2 text {5d} ,^ 2 text { d} _ {5/2} $$和$$ text {5s} ^ 2 text {5d} ,^ 2 text {d} _ {3/2} $$状态到$$ text {5s } ^ 2n $$ p?$$ ^ 2 $$ p和$$ text {5s} ^ 2n text {f} ,^ 2 $$ f rydberg状态,最多一定数量$$ n = 72 $$。提取的Rydberg水平能量用于重新评估铟原子的电离电位为46,670.107(4), hbox {cm} ^ { - 1} $$。核磁偶极子和核电四极高细结构常数和水平同位素转移$$ 文本{5s} ^ 2 text {5d} ,^ 2 text {5d} _ {5/2} $$和$ $ text {5s} ^ 2 text {5d} ,^ 2 text {d} _ {3/2} $$状态用于$$ ^ {113,115} $$ in。将结果与使用相对论耦合簇理论进行比较。在电离电位和同位素偏移中发现了一个良好的一致性,而血清污水结构常数的分歧表明电子相关在这些激发原子态中的重要性增加。目的在于进一步提高对异种同位素的测量的检测灵敏度,同时进行在工作中实施的场电离装置的系统研究,并呈现了改进的设计并提出了改进的设计。改进的设计提供了与远离场电离离子检测的距离无关的背景抑制。

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