Bottom-up dust nucleation theory in oxygen-rich evolved stars I. Aluminium oxide clusters
arXiv:2110.11139 · doi:10.1051/0004-6361/202141976
Abstract
Aluminum oxide (alumina, AlO) is a promising candidate as a primary dust condensate in the atmospheres of oxygen-rich evolved stars. Therefore, alumina \textit{seed} particles might trigger the onset of stellar dust formation and of stellar mass loss in the wind. However, the formation of alumina dust grains is not well understood.} {To shed light on the initial steps of cosmic dust formation (i.e. nucleation) in oxygen-rich environments by a quantum-chemical bottom-up approach.} {Starting with an elemental gas-phase composition, we construct a detailed chemical-kinetic network describing the formation and destruction of aluminium-bearing molecules and dust-forming (AlO) clusters up to the size of dimers (=2) coagulating to tetramers (4). Intermediary species include the prevalent gas-phase molecules AlO and AlOH, and AlO clusters with 15, 16. The resulting extensive network is applied to two model stars, representing a semi-regular variable and a Mira-type, and to different circumstellar gas trajectories including a non-pulsating outflow and a pulsating model. The growth of larger-sized (AlO) clusters with 410 is described by the temperature-dependent Gibbs free energies of the most favourable structures (i.e. the global minima clusters) as derived from global optimisation techniques and calculated by density functional theory. We provide energies, bond characteristics, electrostatic properties and vibrational spectra of the clusters as a function of size and compare these to corundum corresponding to the crystalline bulk limit (). {The circumstellar aluminium gas-phase chemistry in oxygen-rich giants is primarily controlled by AlOH and AlO, which are tightly coupled by the reactions AlO+H, AlO+HO, and their reverse. Models of ...}
A&A accepted, 31 pages
References in corpus (10)
- A grid of MARCS model atmospheres for late-type stars I. Methods and general properties
- Too little radiation pressure on dust in the winds of oxygen-rich AGB stars
- (Sub)stellar companions shape the winds of evolved stars
- The wind of W Hya as seen by Herschel - I. The CO envelope
- The trigger of the AGB superwind: the importance of carbon
- Atomistic Mechanisms for the Nucleation of Aluminium Oxide Nanoparticles
- Clumpy dust clouds and extended atmosphere of the AGB star W Hya revealed with VLT/SPHERE-ZIMPOL and VLTI/AMBER II. Time variations between pre-maximum and minimum light
- On the alumina dust production in the winds of O-rich Asymptotic Giant Branch stars
- Search for aluminium monoxide in the winds of oxygen-rich AGB stars
- Bottom-up dust nucleation theory in oxygen-rich evolved stars II. Magnesium and calcium aluminate clusters
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