<p>Using the variational Monte Carlo method, a first-time investigation is made for the beryllium atom, ions and isoelectronic ions within three plasma environments confined by an external homogeneous magnetic field. The study focusses on the excited singlet and triplet states included in this work, which are the low-lying excited states (1<i>s</i><sup>2</sup>2<i>s</i>2<i>p</i>, 1<i>s</i><sup>2</sup>2<i>s</i>3<i>s</i> and 1<i>s</i><sup>2</sup>2<i>s</i>3<i>p</i>) and the core excited states (1<i>s</i>2<i>s</i><sup>2</sup>3<i>s</i> and 1<i>s</i>2<i>s</i>3<i>s</i><sup>2</sup>), utilising plasma potentials, such as the screened Coulomb (SCP), exponential cosine screened Coulomb (ECSCP) and Hulthén potentials. Energy eigenvalues are determined using appropriate trial wave functions, which account for electron–electron repulsion and spin parts to adhere to the Pauli exclusion principle. Moreover, two effective factors related to the wave function of the magnetic field and the ECSCP model are considered. The results reveal an intriguing relative ordering for the lithium atom using the three plasma models, with many of the findings being novel contributions yet to be explored.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Confinement impacts of magnetic field on beryllium atom, ions and isoelectronic ions embedded in various plasma environments

  • Salah Doma,
  • Gamal Roston,
  • Mostafa Ahmed

摘要

Using the variational Monte Carlo method, a first-time investigation is made for the beryllium atom, ions and isoelectronic ions within three plasma environments confined by an external homogeneous magnetic field. The study focusses on the excited singlet and triplet states included in this work, which are the low-lying excited states (1s22s2p, 1s22s3s and 1s22s3p) and the core excited states (1s2s23s and 1s2s3s2), utilising plasma potentials, such as the screened Coulomb (SCP), exponential cosine screened Coulomb (ECSCP) and Hulthén potentials. Energy eigenvalues are determined using appropriate trial wave functions, which account for electron–electron repulsion and spin parts to adhere to the Pauli exclusion principle. Moreover, two effective factors related to the wave function of the magnetic field and the ECSCP model are considered. The results reveal an intriguing relative ordering for the lithium atom using the three plasma models, with many of the findings being novel contributions yet to be explored.