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C. A. S. Moltzer

Publications and source records attributed to C. A. S. Moltzer.

3 recordsLinked to original sources

Can circumbinary discs produce the eccentricities of shell-burning stripped giant binaries?

Post-RGB and post-AGB binaries, collectively shell-burning stripped giant (SBSG) binaries, contain a primary star recently stripped of its envelope, alongside a main-sequence companion. These systems are characterised by a stable circumbinary disc (CBD), thought to have formed from envelope material stripped via mass transfer. Their eccentricities range between $0-0.63$, contradicting canonical binary evolution that predicts such post-mass-transfer systems should have circularised. We investigate whether CBD-binary interaction can explain the observed eccentricities of SBSG binaries using a new formalism based on hydrodynamic simulations. To compare with observations, we generated model populations for which post-mass-transfer eccentricity and amount of mass accreted from the CBD were free parameters. We found that CBD-binary interaction can reproduce the observed eccentricity distribution of SBSG binaries, provided that: (1) their post-mass-transfer eccentricities range up to at least 0.05, (2) their CBDs have initial masses of at least $0.1$ $M_\odot$, and (3) accretion onto the SBSG star is highly inefficient to prevent refilling of its Roche lobe. Our model requires higher post-mass-transfer eccentricities than canonically predicted and more massive CBDs than currently observed. We speculate that there is a population of post-mass-transfer progenitor systems with CBDs massive enough to facilitate significant eccentricity pumping. Mass loss via the $L_2$ point during mass transfer needs investigation, as this could form the CBD and shorten the orbital period, necessary for many SBSG binaries assuming they formed stably. We hypothesise that the observed eccentricities are related to the amount of mass lost via $L_2$. Since many other post-interaction systems exhibit similar orbital properties, we speculate that they may all have interacted with CBDs shortly after mass transfer.

astro-ph.SR↗

Understanding post-red giant branch binaries through stable mass transfer

Post-RGB and post-AGB binaries consist of a primary star that has recently evolved off either the RGB or AGB after losing most of its envelope, and a main-sequence companion. They are distinguished by luminosities below and above the RGB tip, respectively. These systems host a stable, dusty circumbinary disc, characterised by a near-infrared excess. Observed Galactic post-AGB and post-RGB binaries have orbital periods and eccentricities inconsistent with binary population synthesis models. Here, we focus on post-RGB binaries, testing whether stable mass transfer can explain their orbital periods by comparing models with the known sample of 38 Galactic post-RGB binaries. We systematically determined luminosities of Galactic post-RGB and post-AGB binaries through SED fitting. We computed evolution models for low- and intermediate-mass binaries with RGB donors at two metallicities using MESA. We selected stable mass transfer models producing primaries with effective temperatures within the observed range. From these models, we find that low-mass post-RGB binaries should follow strict luminosity-orbital period relations. The Galactic post-RGB binaries seem consistent with these relations if their orbits remained eccentric during mass transfer and if the donor filled its Roche lobe at periastron. However, our models are unable to explain the eccentricities themselves. Moreover, post-mass-transfer ages from our models are much longer than predicted dissipation timescales of circumbinary discs. Stable mass transfer seems to explain the orbital periods of Galactic post-RGB binaries. This formation channel can be tested further by obtaining orbits of additional Galactic systems and Magellanic Cloud candidates via long-term radial velocity monitoring. Gaia DR 4 will improve luminosities of Galactic post-RGB binaries, enabling more accurate comparison with luminosity-orbital period relations.

astro-ph.SR↗

The chemical composition of globular clusters in the Local Group

We present detailed abundance measurements for 45 globular clusters (GCs) in galaxies in (and, in one case, beyond) the Local Group. The measurements are based on new high-resolution integrated-light spectra of GCs in NGC 185, NGC 205, M31, M33, and NGC 2403, combined with reanalysis of previous observations of GCs in the Fornax dSph, WLM, NGC 147, NGC 6822, and the Milky Way. The GCs cover the range -2.8 < [Fe/H] < -0.1 and we determined abundances for Fe, Na, Mg, Si, Ca, Sc, Ti, Cr, Mn, Ni, Cu, Zn, Zr, Ba, and Eu. Corrections for non local thermodynamic equilibrium effects are included for Na, Mg, Ca, Ti, Mn, Fe, Ni, and Ba. For several of the galaxies, our measurements provide the first quantitative constraints on the detailed composition of their metal-poor stellar populations. Overall, the GCs in different galaxies exhibit remarkably uniform abundance patterns of the alpha-, iron-peak, and neutron-capture elements, with a dispersion of less than 0.1 dex in [alpha/Fe] for the full sample. There is a hint that GCs in dwarf galaxies are slightly less alpha-enhanced (by about 0.04 dex on average) than those in larger galaxies. One GC in M33 (HM33-B) resembles the most metal-rich GCs in the Fornax dSph (Fornax 4) and NGC 6822 (SC7) by having alpha-element abundances closer to scaled-solar values, possibly hinting at an accretion origin. We find that the alpha-element abundances strongly correlate with those of Na, Sc, Ni, and Zn. Several GCs with [Fe/H]<-1.5 are deficient in Mg compared to other alpha-elements. We find no GCs with strongly enhanced r-process abundances as reported for metal-poor stars in some ultra-faint dwarfs and the Magellanic Clouds. The similarity of the abundance patterns for metal-poor GCs in different environments points to similar early enrichment histories and only allow for minor variations in the initial mass function.

astro-ph.GA↗