搜索

x
中国物理学会期刊

Li+和K(4s)碰撞的非辐射及辐射过程的理论研究

Theoretical Study on Non-radiative and Radiative Processes in Collisions of Li+ with K(4s)

PDF
HTML
导出引用
  • 本文系统研究了\mathrmLi^++\mathrmK(\rm4s)碰撞体系在极低能至中低能区的电荷转移动力学, 并重点揭示了非辐射与辐射过程之间的跨能区竞争机制. 通过结合全量子分子轨道强耦合(QMOCC)和双中心原子轨道强耦合(TC-AOCC)方法, 计算了10^-5—10\;\mathrmkeV/u能区内的非辐射电荷转移截面. 结果表明, 非辐射电荷转移主要由通道间非绝热耦合主导: 在碰撞能量范围(0.08\;\texteV/u<E<200\;\mathrmeV/u)内, 电子主要通过转动耦合俘获至\mathrmLi(2p)态; 随着能量升高, 多通道耦合作用增强, 3^2\Sigma^+与1^2\Pi通道的贡献趋于竞争和平衡. 在此基础上, 结合全量子方法、光学势方法及半经典近似, 系统研究了10^-11—20\;\mathrmeV/u能区内的辐射电荷转移、辐射衰变及辐射缔合过程. 结果显示, 碰撞能量E<0.08\;\texteV/u时, 辐射过程取代非辐射过程成为主导机制; 进一步降至E<0.01\;\texteV/u极低能区时, 辐射缔合截面显著高于辐射电荷转移截面, 表明体系更倾向于形成束缚分子离子. 本研究表明, 在该体系中, 非绝热耦合与辐射跃迁在不同能区内主导不同的反应路径, 从而在整体上重塑了电荷转移动力学的主导机制与产物分布, 为低温离子--原子碰撞及相关建模提供了系统的物理图像. 相关结果可为等离子体物理、天体化学和冷分子物理领域的相关建模提供可靠理论支撑.
    本文数据集可在https://doi.org/10.57760/sciencedb.j00213.00247中访问获取(审稿阶段请通过私有访问链接查看本文数据集https://www.scidb.cn/s/eaiIFv).

     

    This work systematically investigates the charge-transfer dynamics in Li+ + K( \rm4s ) collisions from ultralow to moderately low energies, with emphasis on the cross-energy competition between non-radiative and radiative processes. Non-radiative charge-transfer cross sections are calculated over 10^-5-10\;\mathrmkeV/u using the QMOCC and TC-AOCC methods. The results show that non-radiative charge transfer is dominated by nonadiabatic coupling between channels. In the low-energy region (E<200\;\mathrmeV/u), electron capture mainly occurs via rotational coupling into the Li( 2p ) state; with increasing energy, multichannel coupling becomes stronger, and the contributions of the 3^2\Sigma^+ and 1^2\Pi channels approach competition. Radiative charge transfer, radiative decay, and radiative association are further studied within 10^-11-20\;\mathrmeV/u using full-quantum, optical potential, and semiclassical methods. When the collision energy is below 0.08\;\mathrmeV/u, radiative processes become dominant. In the ultralow-energy region (E<0.01\;\mathrmeV/u), radiative association cross sections are significantly larger than those of radiative charge transfer, indicating a strong tendency for bound molecular ion formation. These results show that nonadiabatic coupling and radiative transitions dominate different reaction pathways in different energy regimes, thereby reshaping the overall charge-transfer dynamics and product distribution. The present work provides a coherent physical picture and reliable data for modeling low-temperature ion--atom collisions in plasma physics, astrochemistry, and cold molecular physics.
    The datasets presented in this paper are openly available at https://doi.org/10.57760/sciencedb.j00213.00247 (Please use the private access link https://www.scidb.cn/s/eaiIFv to access the dataset during the peer review process).

     

    目录

    /

    返回文章
    返回