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首页> 外文期刊>Physical review >5f-6d orbital hybridization of trivalent uranium in crystals of hexagonal symmetry: Effects on electronic energy levels and transition intensities
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5f-6d orbital hybridization of trivalent uranium in crystals of hexagonal symmetry: Effects on electronic energy levels and transition intensities

机译:六方对称晶体中三价铀的5f-6d轨道杂交:对电子能级和跃迁强度的影响

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摘要

Orbital hybridization (mixing of electron configurations of opposite parities) is analyzed in the framework of crystal-field theory with a complete diagonalization of the crystal-field Hamiltonian, including both even and odd terms of crystal-field potential, and with all basis sets of the 5f~3 and 5f~26d configurations for the wave functions of open-shell electrons in the U~(3+) ion. This method provides a fundamental understanding and quantitative analysis of the crystal-field induced 5f-6d mixing in U~(3+):LaCl_3 and U~(3+):CeCl_3. The odd terms of the crystal-field interaction [B_3~3(fd) and B_3~5(fd) in C_(3h) site symmetry] selectively couple the states of the 5f~3 and 5f~26d configurations, inducing a shift of the energy levels and allow electric dipole transitions between the configuration-mixed states. The mixture of the 5f and 6d configurations is evaluated by introducing an index of configuration mixing. The exchange charge model (ECM) of crystal-field theory is used to calculate the crystal-field parameters of the U~(3+) 5f and 6d electrons in terms of point-charge electrostatic interaction and orbital overlapping and covalent effect. The initial ECM estimations of the crystal-field parameters were optimized along with free-ion parameters of the Hamiltonian in nonlinear least-squares fitting of the calculated U~(3+) energy levels to the experimental absorption spectra. The configuration-mixed eigenfunctions of the U~(3+) states are directly used to calculate the electric dipole transition intensities and simulate the absorption spectra where the 5f~3 and 5f~26d configurations overlap and the Judd-Ofelt theory fails because of significant configuration mixing.
机译:在晶体场理论的框架内分析了轨道杂交(相对奇偶电子构型的混合),对晶体场哈密顿量进行了完全对角化,包括晶体场势的偶数和奇数项,以及U〜(3+)离子中开壳电子的波函数的5f〜3和5f〜26d构型。该方法对U〜(3 +):LaCl_3和U〜(3 +):CeCl_3中的晶场诱导的5f-6d混合提供了基本的了解和定量分析。晶体场相互作用的奇数项[C_(3h)位置对称中的B_3〜3(fd)和B_3〜5(fd)]有选择地耦合5f〜3和5f〜26d构型的状态,从而引起能量水平,并允许电偶极子在构型混合状态之间转换。通过引入构型混合指数来评估5f和6d构型的混合物。根据点电荷静电相互作用,轨道重叠和共价效应,利用晶体场理论的交换电荷模型(ECM)计算U〜(3+)5f和6d电子的晶体场参数。在计算出的U〜(3+)能级与实验吸收光谱的非线性最小二乘法拟合中,优化了晶体场参数的初始ECM估计以及哈密顿量的自由离子参数。 U〜(3+)态的结构混合本征函数直接用于计算电偶极跃迁强度并模拟5f〜3和5f〜26d构型重叠且Judd-Ofelt理论由于有效配置混合。

著录项

  • 来源
    《Physical review》 |2009年第15期|155120.1-155120.10|共10页
  • 作者单位

    Chemical Sciences and Engineering Division, Argonne National Laboratory, Argonne, Illinois 60439, USA;

    Chemical Sciences and Engineering Division, Argonne National Laboratory, Argonne, Illinois 60439, USA;

    Institute of Physics, University of Tartu, Riia 142, Tartu 51014, Estonia;

    Departamento de Quimica, Universidad Autonoma de Madrid, 28049 Madrid, Spain;

    Department of Chemical and Materials Engineering, University of Cincinnati, Cincinnati, Ohio 45221, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    theories and models; localized states; crystal and ligand fields; exchange interactions;

    机译:理论和模型;局部状态;晶体和配体场;交流互动;

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