4.6 Article

IMAGING DISCOVERY OF THE DEBRIS DISK AROUND HIP 79977

期刊

ASTROPHYSICAL JOURNAL LETTERS
卷 763, 期 2, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/2041-8205/763/2/L29

关键词

circumstellar matter; planetary systems; stars: individual (HIP 79977); techniques: high angular resolution

资金

  1. US National Science Foundation [1009203]
  2. Grants-in-Aid for Scientific Research [23103002, 22000005, 23103001, 21244022] Funding Source: KAKEN
  3. Division Of Astronomical Sciences
  4. Direct For Mathematical & Physical Scien [0901967] Funding Source: National Science Foundation
  5. Division Of Astronomical Sciences
  6. Direct For Mathematical & Physical Scien [1008440, 1009203] Funding Source: National Science Foundation

向作者/读者索取更多资源

We present Subaru/HiCIAO H-band high-contrast images of the debris disk around HIP 79977, whose presence was recently inferred from an infrared excess. Our images resolve the disk for the first time, allowing characterization of its shape, size, and dust grain properties. We use angular differential imaging (ADI) to reveal the disk geometry in unpolarized light out to a radius of similar to 2 '', as well as polarized differential imaging to measure the degree of scattering polarization out to similar to 1 ''.5. In order to strike a favorable balance between suppression of the stellar halo and conservation of disk flux, we explore the application of principal component analysis to both ADI and reference star subtraction. This allows accurate forward modeling of the effects of data reduction on simulated disk images, and thus direct comparison with the imaged disk. The resulting best-fit values and well-fitting intervals for the model parameters are a surface brightness power-law slope of S-out = -3.2[-3.6,-2.9], an inclination of i = 84 degrees[81 degrees, 86 degrees], a high Henyey-Greenstein forward-scattering parameter of g = 0.45[0.35, 0.60], and a nonsignificant disk-star offset of u = 3.0[-1.5, 7.5] AU = 24[-13, 61] mas along the line of nodes. Furthermore, the tangential linear polarization along the disk rises from similar to 10% at 0 ''.5 to similar to 45% at 1 ''.5. These measurements paint a consistent picture of a disk of dust grains produced by collisional cascades and blown out to larger radii by stellar radiation pressure.

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