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Marten L. Reitsma

Publications and source records attributed to Marten L. Reitsma.

4 recordsLinked to original sources

Relativistic quintuple-zeta basis sets for the p block

Relativistic quintuple-zeta basis sets for the p elements are presented. The basis sets for the occupied spinors were optimized at the Dirac-Coulomb self-consistent field (SCF) level on the ground configurations. Valence and core correlating functions were optimized in multireference SDCI calculations on the ground configuration. Diffuse functions optimized on the anion (or derived from neighboring elements for group 18) are also provided. Basic atomic and molecular properties were used to test the newly developed basis sets. A smooth convergence to the basis set limit is observed with increased basis set quality from the previously available double-zeta, triple-zeta, and quadruple-zeta basis sets to the newly developed quintuple-zeta basis sets for the calculated molecular bond lengths and dissociation energies and for atomic ionization potentials and electron affinities. Use of these basis sets in combination with state-of-the-art approaches for treatment of relativity and correlation will allow significantly increased accuracy in calculations on the heavy elements and their compounds. The basis sets are available at https://doi.org/10.5281/zenodo.18351835.

physics.atom-ph↗

Relativistic quintuple-zeta basis sets for the s block

Relativistic basis sets of quintuple-zeta quality are presented for the s-block elements. The basis sets include SCF exponents for the occupied spinors and for the np shell (the latter is considered here a valence orbital). Valence and core correlating functions were optimized within multireference SDCI calculations for the ground valence configuration. Diffuse functions optimized for the corresponding anions or derived from neighboring elements are also provided. The new basis sets were applied to a range of basic atomic and molecular properties for benchmarking purposes. Smooth convergence to the basis set limit is observed with increased basis set quality from existing double-zeta, triple-zeta, and quadruple-zeta to the newly developed quintuple-zeta basis sets. Use of these basis sets in combination with state-of-the-art approaches for treatment of relativity and correlation will allow achieving higher accuracy and lower uncertainty than previously possible in calculations on heavy atoms and molecules. The basis sets are available at https://doi.org/10.5281/zenodo.17088050.

physics.atom-ph↗

Relativistic coupled cluster calculations of the electron affinity and ionization potentials of lawrencium

The calculations of the first and the second ionization potentials of lawrencium and lutetium and the electron affinity of lawrencium are performed within the relativistic coupled cluster framework. These results are corrected by including the contributions of extrapolation to the complete basis set limit and higher order contributions due to relativity and electron correlation. The excellent agreement between our predictions of the ionization potentials of Lu and Lr and experimental values supports the accuracy of our predictions of the second ionization potential and the electron affinity of Lr.

physics.atom-ph↗

Nuclear charge radii of silicon isotopes

The nuclear charge radius of $^{32}$Si was determined using collinear laser spectroscopy. The experimental result was confronted with ab initio nuclear lattice effective field theory, valence-space in-medium similarity renormalization group, and mean field calculations, highlighting important achievements and challenges of modern many-body methods. The charge radius of $^{32}$Si completes the radii of the mirror pair $^{32}$Ar - $^{32}$Si, whose difference was correlated to the slope $L$ of the symmetry energy in the nuclear equation of state. Our result suggests $L \leq 60$\,MeV, which agrees with complementary observables.

nucl-ex↗