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Mbuso K. Matfunjwa

Publications and source records attributed to Mbuso K. Matfunjwa.

2 recordsLinked to original sources

Nonadiabatic Dynamics and Rotational Coupling in $\mathrm{HeH^+}$ Dissociative Recombination and Resonant Ion-Pair Formation

We present a time-dependent wave-packet study of dissociative recombination (DR) and resonant ion-pair (RIP) formation in $\mathrm{HeH^+}$ isotopologues. Nuclear dynamics are treated on a manifold of 23 coupled electronic states of $^2Σ$, $^2Π$, and $^2Δ$ symmetries, including rotational couplings between different symmetries. The results reveal that inclusion of a large manifold of resonant states and rotational couplings significantly enhances the DR cross section relative to earlier theoretical studies. In the diabatic representation, $^2Σ$ states dominate the recombination dynamics, while in the adiabatic representation, $^2Π$ and $^2Δ$ states contribute significantly at low collision energies. For RIP formation, two different diabatization schemes yield systematically larger cross sections than previous models, highlighting the sensitivity of ion-pair production to electronic coupling structure. Isotopic effects are examined, showing a clear inverse dependence of cross section magnitude on reduced mass. Thermal rate coefficients are computed over $10^{2}$ to $2\times 10^4$ K thermal electron temperatures. Isotopic effects are examined, showing a clear inverse dependence of cross section magnitude on reduced mass. The results are compared with rotational-state-resolved experimental and theoretical results. The present results highlight the importance of multistate coupling and rotational interactions in electron-driven fragmentation processes relevant to primordial and astrophysical plasmas.

physics.atm-clus

Direct Dissociative Recombination and Ion-pair Formation of $\mathrm{HeH}^+$ Isotopologues

Direct dissociative recombination and resonant ion-pair formation reactions of $\mathrm{HeH^+}$ are theoretically studied using time-dependant wave-packets methods. The wave packets are propagated on potential energy curves that are in either the adiabatic representation or the diabatic representation. The reaction cross sections are computed for collisions of different isotopes of $\mathrm{He}$ and $\mathrm{H}$. The reactions are modeled in the collision energy range 0 eV to 50 eV. Final states distributions are also investigated for the $\mathrm{^4HeH^+}$ dissociative recombination reaction, showing dominance of contribution from states of $^2Σ$ symmetry in the diabatic representation. In the adiabatic representation, the $^2Π$ and $^2Δ$ states dominate at lower collision energies. The resonant ion-pair formation reaction is investigated using two sets of representation for the potential energy curve of the ion-pair state. The results are compared with available experimental and other theoretical results. The present model yields a reaction cross section that is larger than previous results.

physics.chem-ph