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首页> 外文期刊>The Journal of Chemical Physics >Accurate and balanced anisotropic Gaussian type orbital basis sets for atoms in strong magnetic fields
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Accurate and balanced anisotropic Gaussian type orbital basis sets for atoms in strong magnetic fields

机译:用于强磁场的原子的准确和平衡的各向异性高斯型轨道基础套装

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In high magnetic field calculations, anisotropic Gaussian type orbital (AGTO) basis functions are capable of reconciling the competing demands of the spherically symmetric Coulombic interaction and cylindrical magnetic (B field) confinement. However, the best available a priori procedure for composing highly accurate AGTO sets for atoms in a strong B field [W. Zhu et al., Phys. Rev. A 90, 022504 (2014)] yields very large basis sets. Their size is problematical for use in any calculation with unfavorable computational cost scaling. Here we provide an alternative constructive procedure. It is based upon analysis of the underlying physics of atoms in B fields that allow identification of several principles for the construction of AGTO basis sets. Aided by numerical optimization and parameter fitting, followed by fine tuning of fitting parameters, we devise formulae for generating accurate AGTO basis sets in an arbitrary B field. For the hydrogen iso-electronic sequence, a set depends on B field strength, nuclear charge, and orbital quantum numbers. For multi-electron systems, the basis set formulae also include adjustment to account for orbital occupations. Tests of the new basis sets for atoms H through C (1 = Z = 6) and ions Li-+,Li- Be+, and B+, in a wide Bfield range (0 = B = 2000 a.u.), show an accuracy better than a few mu hartree for single-electron systems and a few hundredths to a few mHs for multi-electron atoms. The relative errors are similar for different atoms and ions in a large B field range, from a few to a couple of tens of millionths, thereby confirming rather uniform accuracy across the nuclear charge Z and B field strength values. Residual basis set errors are two to three orders of magnitude smaller than the electronic correlation energies in multi-electron atoms, a signal of the usefulness of the new AGTO basis sets in correlated wavefunction or density functional calculations for atomic and molecular systems in an external strong
机译:在高磁场计算中,各向异性高斯型轨道(AGTO)基本功能能够协调球形对称的库仑相互作用和圆柱形磁性(B场)限制的竞争要求。然而,最好的优先考虑的方法,用于在强B场中对原子进行高度精确的agto设置[W. zhu等。,phy。 Rev. A 90,022504(2014)]产生非常大的基础集。它们的大小对于使用不利计算成本缩放的任何计算都有问题。在这里,我们提供替代的建设性程序。它基于对B场中原子的底层物理学的分析,允许识别若干原则,以建造AGTO基础集。通过数值优化和参数拟合辅助,然后进行拟合参数的微调,我们设计了用于在任意B场中产生准确的AGTO的公式。对于氢异电子序列,一组取决于B场强度,核电荷和轨道量子数。对于多电子系统,基础设定公式还包括调整以考虑轨道职业。用于原子H到A的新基础组的测试(1& = x = 6)和离子Li - +,Li-be +和B +,在宽的B界范围内(0& = 2000 AU),对于单电子系统的几个Mu Hartree表示精确度,对于多电子原子,几百分之几是几毫米。对于大B场范围中的不同原子和离子,相对误差类似,从几到几厘米的几十个,从而确认核电荷Z和B场强度值的相当均匀的精度。剩余基础设定误差是多电子原子中的电子相关能量的两到三个数量级,新的AGTO基础集中的有用性的信号在外部强度中的相关波飞或密度函数计算中的基础和密度函数计算

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