Gravitational instability in a planet-forming disk.

Speedie, Jessica; Dong, Ruobing; Hall, Cassandra; Longarini, Cristiano; Veronesi, Benedetta; Paneque-Carreño, Teresa; Lodato, Giuseppe; Tang, Ya-Wen et al. · Nature · 2024

basic_science · Level V

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Abstract

The canonical theory for planet formation in circumstellar disks proposes that planets are grown from initially much smaller seeds<sup>1-5</sup>. The long-considered alternative theory proposes that giant protoplanets can be formed directly from collapsing fragments of vast spiral arms<sup>6-11</sup> induced by gravitational instability<sup>12-14</sup>-if the disk is gravitationally unstable. For this to be possible, the disk must be massive compared with the central star: a disk-to-star mass ratio of 1:10 is widely held as the rough threshold for triggering gravitational instability, inciting substantial non-Keplerian dynamics and generating prominent spiral arms<sup>15-18</sup>. Although estimating disk masses has historically been challenging<sup>19-21</sup>, the motion of the gas can reveal the presence of gravitational instability through its effect on the disk-velocity structure<sup>22-24</sup>. Here we present kinematic evidence of gravitational instability in the disk around AB Aurigae, using deep observations of <sup>13</sup>CO and C<sup>18</sup>O line emission with the Atacama Large Millimeter/submillimeter Array (ALMA). The observed kinematic signals strongly resemble predictions from simulations and analytic modelling. From quantitative comparisons, we infer a disk mass of up to a third of the stellar mass enclosed within 1″ to 5″ on the sky.