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Isotope-shift measurements of stable and short-lived lithium isotopes fornuclear-charge-radii determination

机译:稳定和短寿命锂同位素的同位素位移测量,用于核电荷半径测定

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Changes in the mean square nuclear charge radii along the lithium isotopic chain were determined using a combination of precise isotope shift measurements and theoretical atomic structure calculations. Nuclear charge radii of light elements are of high interest due to the appearance of the nuclear halo phenomenon in this region of the nuclear chart. During the past years we have developed a laser spectroscopic approach to determine the charge radii of lithium isotopes which combines high sensitivity, speed, and accuracy to measure the extremely small field shift of an 8-ms-lifetime isotope with production rates on the order of only 10 000 atoms/s. The method was applied to all bound isotopes of lithium including the two-neutron halo isotope ~(11)Li at the on-line isotope separators at GSI, Darmstadt, Germany, and at TRIUMF, Vancouver, Canada. We describe the laser spectroscopic method in detail, present updated and improved values from theory and experiment, and discuss the results.
机译:结合同位素同位素精确测量和理论原子结构计算,确定了沿着锂同位素链的均方核电荷半径的变化。由于在核图的该区域中出现了核晕现象,因此轻元素的核电荷半径受到高度关注。在过去的几年中,我们开发了一种激光光谱法来确定锂同位素的电荷半径,该方法结合了高灵敏度,高速度和高精度,可测量寿命为8毫秒的同位素的极小场偏移,其生产率约为仅10000个原子/秒。该方法已应用于所有结合的锂同位素,包括位于德国达姆施塔特的GSI和位于加拿大温哥华的TRIUMF在线同位素分离器上的两个中子卤素同位素〜(11)Li。我们详细描述了激光光谱方法,从理论和实验中提出了更新和改进的数值,并讨论了结果。

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