Millimeter-wave Detections of Symbiotic Stars in SPT and ACT Data
Abstract
We present the results of a joint targeted search of candidate symbiotic stars at millimeter wavelengths using the South Pole Telescope (SPT) and the Atacama Cosmology Telescope (ACT). Candidates are selected from the New Online Database of Symbiotic Variables, restricting to objects that are within either the SPT-3G or ACT~DR6 footprint, covering most of the southern hemisphere and up to a declination of . Forced photometry on the 828 candidate symbiotic star locations in SPT and ACT data results in 31 unique objects detected with more than a significance using two frequency bands: 18 confirmed and 13 suspected symbiotic stars. We provide the SPT and ACT 95/98, 150, and 220~GHz light curves, along with optical and infrared light curves from 2016--2026, as well as spectral energy distributions, physical parameters from the literature, and brief summaries regarding the nature of each individual object. Using Herschel SPIRE data from 2013, we place upper limits on millimeter flux for CN Cha near the beginning of the optical rise in its 2012/2013 nova, which suggests a strong variability and lag at millimeter wavelengths and results in a rare observance of a Galactic millimeter slow transient. In addition, we provide coadded thumbnails and light curves for the remaining 797 candidate symbiotic stars that did not pass our detection thresholds. Millimeter-wave emission from symbiotic stars is primarily a combination of free-free emission of the ionization region and optically thick blackbody emission of the cooler dust components of the system. When combined with contemporaneous multi-wavelength observations, millimeter-wave observations can be used to test binary models of symbiotic stars and provide insight on the geometry and physical properties of these systems.
Keywords
Cite
@article{arxiv.2605.01022,
title = {Millimeter-wave Detections of Symbiotic Stars in SPT and ACT Data},
author = {C. Tandoi and A. Foster and T. J. Maccarone and A. J. Anderson and B. Ansarinejad and M. Archipley and L. Balkenhol and D. R. Barron and K. Benabed and A. N. Bender and B. A. Benson and F. Bianchini and L. E. Bleem and S. Bocquet and F. R. Bouchet and E. Camphuis and M. G. Campitiello and J. E. Carlstrom and J. Carron and C. L. Chang and P. M. Chichura and A. Chokshi and T. -L. Chou and A. Coerver and T. M. Crawford and C. Daley and T. de Haan and K. R. Dibert and M. A. Dobbs and M. Doohan and D. Dutcher and C. Feng and K. R. Ferguson and N. C. Ferree and K. Fichman and S. Galli and A. E. Gambrel and A. K. Gao and F. Ge and F. Guidi and S. Guns and N. W. Halverson and E. Hivon and G. P. Holder and W. L. Holzapfel and J. C. Hood and A. Hryciuk and N. Huang and T. Jhaveri and F. Keruzore and A. R. Khalife and L. Knox and K. Kornoelje and C. -L. Kuo and K. Levy and Y. Li and A. E. Lowitz and C. Lu and G. P. Lynch and A. S. Maniyar and E. S. Martsen and F. Menanteau and M. Millea and J. Montgomery and Y. Nakato and T. Natoli and A. Ouellette and Z. Pan and P. Paschos and K. A. Phadke and A. W. Pollak and K. Prabhu and W. Quan and M. Rahimi and A. Rahlin and C. L. Reichardt and M. Rouble and J. E. Ruhl and A. C. Silva Oliveira and A. Simpson and J. A. Sobrin and A. A. Stark and J. Stephen and C. Trendafilova and J. D. Vieira and A. G. Vieregg and A. Vitrier and Y. Wan and N. Whitehorn and W. L. K. Wu and M. R. Young and J. A. Zebrowski},
journal= {arXiv preprint arXiv:2605.01022},
year = {2026}
}
Comments
30 pages, 13 figures, 6 tables