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Additive atomic approximation for relativistic effects: A two-component Hamiltonian for molecular electronic

Dimitri N Laikov1

  • 1Chemistry Department, Moscow State University, 119991 Moscow, Russia.

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A new two-component relativistic Hamiltonian simplifies molecular electronic structure calculations. This method offers good accuracy and integrates easily with existing computational chemistry tools.

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Area of Science:

  • Quantum Chemistry
  • Computational Physics
  • Molecular Modeling

Background:

  • Relativistic effects are crucial for accurate electronic structure calculations, especially for heavy elements.
  • Existing relativistic methods can be computationally expensive and complex to implement.
  • The zeroth-order regular approximation (ZORA) is a common relativistic approach but has limitations.

Purpose of the Study:

  • To develop a computationally efficient and accurate approximate relativistic two-component Hamiltonian.
  • To create a formulation that is easily integrated with standard electronic structure methods.
  • To address the nonlinearity issues present in some existing relativistic Hamiltonians.

Main Methods:

  • Derivation of a two-component Hamiltonian as a sum of kinetic, spin-orbit, and non-relativistic operators.
  • Modification of the zeroth-order regular approximation to remove potential nonlinearity.
  • Development of a formulation with easily computable integrals.

Main Results:

  • A simplified approximate relativistic two-component Hamiltonian has been successfully derived.
  • The new formulation is shown to be compatible with traditional electronic structure calculation methods.
  • Molecular tests indicate good accuracy for the proposed approximation.

Conclusions:

  • The developed Hamiltonian provides an accurate and computationally feasible approach for relativistic molecular electronic structure calculations.
  • This method offers a practical alternative for incorporating relativistic effects in computational chemistry.
  • The formulation's simplicity and compatibility enhance its applicability across various electronic structure studies.