Planetary gas gaps and kinematic signatures in the planet forming disk around WISPIT 2
astro-ph.EP
Submitted: 2026-09-04
Updated: 2026-09-04
Comments: Resubmitted to Nature Astronomy on July 20th 2026. Initial submission May 12th 2026
License: http://creativecommons.org/licenses/by/4.0/
The gist: The giant planet formation process in disks of gas and dust surrounding young stars is observationally still poorly constrained.
Abstract
The giant planet formation process in disks of gas and dust surrounding young stars is observationally still poorly constrained. Direct detection of protoplanets within the disk remains limited with current facilities. Indirect observational evidence of protoplanets through substructures or deviations from Keplerian rotation in the gas remains ambiguous in absence of detected planets. The lack of the combined detection of substructures and their corresponding planets makes it challenging to connect the planet formation process to the host environment. Observations with the Atacama Large Millimeter Array (ALMA) reveal clear detections of gas gaps and kinematic signatures in the WISPIT 2 protoplanetary disk that are cospatial with the locations of previously detected giant protoplanets. The newly identified gas gaps, observed in both the 12CO integrated intensity map and its rotation curve, correspond with the previously identified gaps in scattered light. Their morphologies are shown to be consistent with eccentric gaps, as expected from planet-disk interaction models of massive planets. The lack of eccentricity in the outer disk can be explained if a third planet is present in the system. The observations of WISPIT 2 provide a long-sought empirical bridge between kinematic signatures, gas gaps and giant planet formation in disks.
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