Low-temperature optical constants of amorphous silicate dust analogues
K. Demyk, V. Gromov, C. Meny, N. Ysard, D. Paradis, A. P. Jones, D., Petitprez, P. Hubert, H. Leroux, C. Nayral, and F. Delpech

TL;DR
This paper provides new low-temperature optical constants for various amorphous silicate dust analogues, derived from transmission measurements, to improve cosmic dust models across a broad wavelength range.
Contribution
It introduces experimentally derived optical constants for Mg-rich and Mg-Fe silicate dust analogues at multiple low temperatures, extending their applicability in astrophysical models.
Findings
Optical constants calculated from 5 to 1000 microns for multiple samples.
Uncertainties and extrapolations provided for broader wavelength use.
Formulae for temperature interpolation included.
Abstract
Cosmic dust models are key ingredients in advancing our understanding of astronomical environments as diverse as interstellar clouds in galaxies, circumstellar envelopes around evolved and young stars, and protoplanetary disks. Such models consist of several dust populations, each with different compositions and size distributions. They may also consider different grain shapes, although most models assume spherical grains. All include a component of silicate dust. The absorption and emission properties of these dust components are calculated from the optical constants of each dust material which have various experimental, phenomenological, and theoretical origins depending on the model. We aim to provide the community with new sets of optical constants for amorphous silicate dust analogues at low temperatures. The analogues consist of four Mg-rich silicate samples of stoichiometry…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
