From small dust to micron-sized aggregates: The influence of structure and composition on the dust optical properties

IF 5.4 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
M.-A. Carpine, N. Ysard, A. Maury, A. Jones
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引用次数: 0

Abstract

Context. Models of astrophysical dust are key to understanding several physical processes, from the role of dust grains as cooling agents in the interstellar medium (ISM) to their evolution in dense circumstellar discs, explaining the occurrence of planetary systems around many stars. Currently, most models aim to provide optical properties for dust grains in the diffuse ISM, and many do not account properly for complexity in terms of composition and structure when dust is expected to evolve in dense astrophysical environments.Aims. Our purpose is to investigate, with a pilot sample of micron-size dust grains, the influence of hypotheses made about the dust structure, porosity, and composition when computing the optical properties of grown dust grains. We aim to produce a groundwork for building comprehensive yet realistic optical properties that accurately represent dust grains as they are expected to evolve in the dense clouds, cores, and discs. We are especially interested in exploring these effects on the resulting optical properties in the infrared and millimetre domains, where observations of these objects are widely used to constrain the dust properties.Methods. Starting from the small dust grains developed in the THEMIS 2.0 model, we used the discrete dipole approximation to compute the optical properties of 1 μm grains, varying the hypotheses made about their composition and structure. We looked at the dust scattering, emission, and extinction to isolate potential simplifications and unavoidable differences between grain structures.Results. We note significant differences in the optical properties depending on the dust structure and composition. Both the dust structure and porosity influence the dust properties in infrared and millimetre ranges, demonstrating that dust aggregates cannot be correctly approximated by compact or porous spheres. In particular, we show that the dust emissivity index in the millimetre can vary with fixed grain size.Conclusions. Our work sheds light on the importance of taking the dust structure and porosity into account when interpreting observations in astrophysical environments where dust grains may have evolved significantly. For example, measuring the dust sizes using the emissivity index from millimetre observations of the dust thermal emission is a good but degenerate tool, as we observe differences of up to 25% in the dust emissivity index with compact or aggregate grains, varying in composition and structure. Efforts in carrying out physical models of grain growth, for instance, are required to establish realistic constraints on the structure of grown dust grains, and will be used in the future to build realistic dust models for the dense ISM.
从微小粉尘到微米级聚集体:结构和组成对粉尘光学性质的影响
上下文。天体物理尘埃模型是理解几个物理过程的关键,从尘埃颗粒作为星际介质(ISM)中的冷却剂的作用到它们在密集的星周盘中的演化,解释了许多恒星周围行星系统的发生。目前,大多数模型的目标是提供漫射ISM中尘埃颗粒的光学特性,而当尘埃预计在密集的天体物理环境中进化时,许多模型没有适当地考虑到组成和结构的复杂性。我们的目的是通过微米大小的尘埃颗粒的试点样本,研究在计算生长尘埃颗粒的光学特性时,关于尘埃结构、孔隙度和组成的假设的影响。我们的目标是为建立全面而现实的光学特性奠定基础,准确地代表尘埃颗粒,因为它们预计会在稠密的云、核和盘中进化。我们特别感兴趣的是探索这些对红外和毫米域产生的光学性质的影响,这些天体的观测被广泛用于约束尘埃的性质。从THEMIS 2.0模型中开发的小尘埃颗粒开始,我们使用离散偶极子近似计算了1 μm颗粒的光学性质,改变了对其组成和结构的假设。我们研究了粉尘的散射、发射和消光,以分离出可能的简化和颗粒结构之间不可避免的差异。我们注意到,根据尘埃的结构和组成,光学性质有显著差异。尘埃结构和孔隙度都影响尘埃在红外和毫米范围内的特性,表明尘埃聚集体不能用致密或多孔的球体正确地近似。特别是,我们表明,毫米级的粉尘发射率指数可以随固定粒度的变化而变化。我们的工作揭示了在解释天体物理环境中尘埃颗粒可能已经显著进化的观测结果时,考虑尘埃结构和孔隙度的重要性。例如,利用毫米级尘埃热发射观测所得的发射率指数来测量尘埃的大小是一个很好的工具,但这是一个退化的工具,因为我们观察到在组成和结构不同的致密颗粒或聚集颗粒之间,尘埃发射率指数的差异高达25%。例如,需要努力建立颗粒生长的物理模型,以建立对生长的粉尘颗粒结构的现实约束,并将在未来用于为密集的ISM建立现实的粉尘模型。
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来源期刊
Astronomy & Astrophysics
Astronomy & Astrophysics 地学天文-天文与天体物理
CiteScore
10.20
自引率
27.70%
发文量
2105
审稿时长
1-2 weeks
期刊介绍: Astronomy & Astrophysics is an international Journal that publishes papers on all aspects of astronomy and astrophysics (theoretical, observational, and instrumental) independently of the techniques used to obtain the results.
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