Interferometric view into RT Pav's long secondary period. binary vs oscillatory convective modes
arXiv:2511.21987 · doi:10.1051/0004-6361/202554022
Abstract
Long secondary periods (LSPs) occur in about one-third of evolved stars, yet their origin remains unclear. The leading explanations are oscillatory convective modes and a binary companion embedded in dust. We investigate the LSP of the red giant RT Pav using multi-wavelength VLTI interferometry (PIONIER, GRAVITY, MATISSE; 1.5-5.0 microns), obtained near the phase where a companion would appear most separated. These data, combined with photometry and Gaia DR3 astrometry, constrain possible companion masses, orbits, and photometric effects. We model the interferometric observables using uniform-disk, limb-darkened, ellipse, binary, and oscillatory convective dipole representations, supported by Monte Carlo simulations. Gaia limits any companion to a mass whose Roche-lobe volume is too small to hold the obscuring or scattering material required to reproduce the observed LSP modulation. While binary fits can yield low chi-squared values, the inferred positions are inconsistent across wavelength, closure phases do not increase with wavelength as dusty companions predict, and significant detections occur in only two of four bands. Theoretical estimates show that a roughly 1 percent flux companion at LSP-like separations should be consistently detectable for typical O-rich AGB dust, but is not consistently observed. In contrast, an oscillatory convective dipole with a temperature contrast of about 200 K reproduces the H-band morphology and visible-light amplitude without violating Gaia or photometric constraints, and binary-like residuals vanish when dipole models are fitted. Our results therefore favor oscillatory convective modes over a binary origin for the LSP in RT Pav. Time-resolved spectro-interferometry across the LSP cycle is a natural next step.
Minor corrections and final formatting for journal publication. No changes to results
References in corpus (25)
- Gaia Data Release 3: Summary of the content and survey properties
- Gaia Early Data Release 3: The astrometric solution
- First Light for GRAVITY: Phase Referencing Optical Interferometry for the Very Large Telescope Interferometer
- How Dry is the Brown Dwarf Desert?: Quantifying the Relative Number of Planets, Brown Dwarfs and Stellar Companions around Nearby Sun-like Stars
- PIONIER: a 4-telescope visitor instrument at VLTI
- Gaia FGK Benchmark Stars: Effective temperatures and surface gravities
- Interferometric Imaging Directly with Closure Phases and Closure Amplitudes
- (Sub)stellar companions shape the winds of evolved stars
- The pulsation modes, masses and evolution of luminous red giants
- Water in Emission in the ISO Spectrum of the Early M Supergiant Star mu Cephei
- Long Secondary Periods in Variable Red Giants
- A new interpretation of the period-luminosity sequences of long-period variables
- A catalogue of stellar diameters and fluxes for mid-infrared interferometry
- Image reconstruction in optical interferometry: Benchmarking the regularization
- Inference of the cosmic rest-frame from supernovae Ia
- Binarity as the Origin of Long Secondary Periods in Red Giant Stars
- Wind morphology around cool evolved stars in binaries: the case of slowly accelerating oxygen-rich outflows
- Properties of self-excited pulsations in 3D simulations of AGB stars and red supergiants
- Long Secondary Periods in luminous red giant variables
- Connection between the Long Secondary Period phenomenon and the red giant evolution
- Eppur si eclissa: Eccentric low-mass companions and time-in-dust selection explain long secondary periods
- Non-radial oscillations mimicking a brown dwarf orbiting the cluster giant NGC 4349 No. 127
- Self-Excited Pulsations and the Instability Strip of Long-Period Variables: the Transition from Small-Amplitude Red Giants to Semi-Regular Variables
- Imaging reconstruction for infrared interferometry: first images of YSOs environment
- Refined fundamental parameters of Canopus from combined near-IR interferometry and spectral energy distribution