JWST/MIRI Imaging Search for Kinematically Detected Protoplanetary Candidates
G. Cugno, M. Benisty, R. Teague, A. Boccaletti, L. Pueyo, M. Perrin, M. Mâlin, J. Girard, V. Christiaens, P. Patapis, K. Lawson, S. M. Andrews, J. Bae, M. Barraza-Alfaro, M. J. Bonse, M. Courtoux, S. Facchini, M. Fukagawa, G. Guidi, R. Helled, T. Henning, J. Huang, J. Kammerer, C. Law, G. Lodato, F. Long, F. Ménard, M. Meyer, D. J. Price, C. Rab, I. Rebollido Vazquez, L. M. Stapper, T. Stolker, D. Wilner, A. J. Winter
Abstract
Kinematic perturbations observed with ALMA in CO line emission provide evidence for a population of embedded giant protoplanets shaping the structure of protoplanetary disks. We present JWST/MIRI F1140C (λ= 11.3~μm) coronagraphic observations of five protoplanetary disks, HD163296, RXJ1615.3-3255, RXJ1842.9-3532, SY Cha, and LkCa 15, with the goal of directly detecting candidate protoplanets orbiting at 70 au previously inferred from gas kinematics. The data were analyzed using a bespoke methodology that combines reference PSF subtraction with forward modeling of partially resolved inner disk emission, which otherwise dominates the diffraction pattern in the images. This approach improves the sensitivity to young companions at small separations. No point source consistent with an embedded protoplanet is detected in any of the systems. Instead, in three systems we detect extended emission at 11.3~μm tracing the outer disk out to radii comparable to those probed by CO. Injection tests indicate upper mass limits of roughly 3-20 MJ at separations of a few hundred au, assuming no additional thermal contribution from circumplanetary environment. Even with space-based observations, these limits remain mostly above the 1-5 MJ masses inferred from disk kinematics, largely due to the limitations imposed by emission (and/or scattered light) contributions from both the inner and outer disk. These observations highlight the challenges of observing protoplanets embedded in their forming environment at large separation with JWST/MIRI. Lessons learned can inform future studies with the Extremely Large Telescope, which will probe separations where the occurrence rate of gas giants is expected to be higher.
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