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Unveiling the physical conditions of the youngest disks: A warm embedded disk in L1527

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arxiv 1803.04515 v1 pith:XOPC25T5 submitted 2018-03-12 astro-ph.SR astro-ph.GA

classification astro-ph.SRastro-ph.GA
keywords diskdisksembeddedl1527midplanetemperatureenvelopethroughout
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

[Abridged] Protoplanetary disks have been studied extensively, both physically and chemically, to understand the environment in which planets form. However, the first steps of planet formation are likely to occur already when the protostar and disk are still embedded in their natal envelope. The initial conditions for planet formation may thus be provided by these young embedded disks, of which the physical and chemical structure is poorly characterized. We aim to constrain the midplane temperature structure, one of the critical unknowns, of the embedded disk around L1527. In particular, we set out to determine whether there is an extended cold outer region where CO is frozen out, as is the case for Class II disks. We use archival ALMA data to directly observe the midplane of the near edge-on L1527 disk. Optically thick $^{13}$CO ($J=2-1$) and C$^{18}$O ($J=2-1$) emission is observed throughout the disk and inner envelope, while N$_2$D$^+ (J=3-2$), which can only be abundant when CO is frozen out, is not detected. Both CO isotopologues have brightness temperatures $\gtrsim$ 25 K along the midplane. Disk and envelope emission can be disentangled kinematically, because the largest velocities are reached in the disk. A power law radial temperature profile constructed using the highest midplane temperature at these velocities suggest that the temperature is above 20 K out to at least 75 AU, and possibly throughout the entire 125 AU disk. Radiative transfer models show that a model without CO freeze-out in the disk matches the C$^{18}$O observations better than a model with the CO snowline at $\sim$70 AU. In addition, there is no evidence for a large (order of magnitude) depletion of CO. The disk around L1527 is likely to be warm enough to have CO present in the gas phase throughout the disk, suggesting that young embedded disks can indeed be warmer than the more evolved Class II disks.

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Forward citations

Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Revisiting gravitational instability in protostellar discs with improved radiative cooling models

    astro-ph.EP 2026-08 conditional novelty 6.0 of 10

    With a more accurate cooling model, protostellar discs fragment or form spirals under a different parameter range than earlier simulations suggested, including fragmentation in compact discs and stability up to 0.4 st...

  2. A Chemical Inventory of the Disk around the Class 0 Protostar L1527 IRS with ALMA

    astro-ph.GA 2026-08 accept novelty 6.0 of 10

    A comprehensive ALMA-based chemical inventory of the Class 0 protostar L1527 IRS finds 39 molecular species and a carbon-rich to oxygen-rich transition from envelope to disk.

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