Condensation sequence of circumstellar cluster seeds (CSCCS)
Abstract
Traditionally, the condensation sequence of circumstellar dust is predicted based on the thermodynamic stabilities of specific condensates in the macroscopic bulk phase. However, at the (sub-)nanometer scale clusters with non-crystalline structures and significantly different properties are energetically favoured. For this reason, we study the thermodynamic stabilities of metal oxide clusters with generic stoichiometries of MO and MO, where M represents a metal atom. With an upper size limit of 50 atoms, we consider clusters with sizes n=110 for (MO), and n=17 for (MO). The MO clusters comprise alumina (AlO), Mg-rich pyroxene (MgSiO) and a size-limited sample of titanates (CaTiO), whereas the MO clusters include spinel (MgAlO), Mg-rich olivine (MgSiO) and calcium aluminates (CaAlO). We find that, apart from the alumina monomer, the aluminum-bearing clusters (AlO), n=110, and (MgAlO), n=17, are favoured over their silicate counterparts (MgSiO), n=110 and (MgSiO), n=17. Also, we find that calcium aluminate clusters, CaAlO, are energetically more favourable than magnesium aluminate clusters, MgAlO. Furthermore, for a limited data set of (CaTiO), n=12, clusters we find significantly larger stabilities than for the other considered (MO) clusters, namely AlO and MgSiO. Future investigations, in particular on titanates and on Ca-rich silicates, are required to draw a more thorough and complete picture of the condensation sequence at the (sub-)nanoscale.
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@article{arxiv.2510.13657,
title = {Condensation sequence of circumstellar cluster seeds (CSCCS)},
author = {David Gobrecht},
journal= {arXiv preprint arXiv:2510.13657},
year = {2025}
}
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