论文标题
激光光谱用于研究外来核
Laser Spectroscopy for the Study of Exotic Nuclei
论文作者
论文摘要
对远离稳定性的不稳定核的特性和结构的调查仍然是现代核物理学研究的关键途径。这些努力是由于不寻常的质子与中子比的核中意外结构现象的持续观察而动机。近几十年来,激光光谱技术在我们对几乎整个核图表的不同质量区域的外来核方面做出了重大贡献。这是通过确定核态和异构体状态的多个基本特性,例如核自旋,磁偶极子和电力四极矩矩和电荷半径,通过测量超精细结构和同位素的转移的原子或离子离子光谱的转移。当这些特性以足够精确的远距离同位素测量时,可以对最近开发的最新理论进行突出的测试,并有助于刺激新的发展,以改善这些模型核心的多体方法和核子核子的相互作用。为了探索位于质子和中子drip的更奇异的短寿命核,激光光谱技术及其对更高分辨率和更高敏感性的连续技术发展在全球范围内的电流和下一代放射性离子束设施中广泛使用。持续的努力并行承诺使更多的外来物种可以在下一代设施中进行研究。最近,已经证明,激光光谱在含有短寿命核的分子上的创新应用为几个研究领域提供了额外的机会,例如基本对称研究和天体物理学。
Investigation into the properties and structure of unstable nuclei far from stability remains a key avenue of research in modern nuclear physics. These efforts are motivated by the continual observation of unexpected structure phenomena in nuclei with unusual proton-to-neutron ratios. In recent decades, laser spectroscopy techniques have made significant contributions in our understanding of exotic nuclei in different mass regions encompassing almost the entire nuclear chart. This is achieved through determining multiple fundamental properties of nuclear ground and isomeric states, such as nuclear spins, magnetic dipole and electric quadrupole moments and charge radii, via the measurement of hyperfine structures and isotope shifts in the atomic or ionic spectra of the nuclei of interest. These properties, when measured with sufficient precision for a long range of isotopes, offer prominent tests of recently developed state-of-the-art theory and help to stimulate new developments to improve the many-body methods and nucleon-nucleon interactions at the core of these models. With the aim of exploring more exotic short-lived nuclei located ever closer to the proton and neutron driplines, laser spectroscopy techniques, with their continuous technological developments towards higher resolution and higher sensitivity, are extensively employed at current- and next-generation radioactive ion beam facilities worldwide. Ongoing efforts in parallel promise to make even more exotic species available for study at next-generation facilities. Very recently, an innovative application of laser spectroscopy on molecules containing short-lived nuclei has been demonstrated offering additional opportunities for several fields of research, e.g. fundamental symmetry studies and astrophysics.