论文标题

热红外橄榄石颗粒的双光谱峰是否诊断出其大小和孔隙率?

Do twin spectral peaks of olivine particles in the thermal infrared diagnose their sizes and porosities?

论文作者

Kimura, Hiroshi, Markkanen, Johannes, Kolokolova, Ludmilla, Hilchenbach, Martin, Wada, Koji, Kanada, Yasumasa, Matsui, Takafumi

论文摘要

对非孔橄榄石颗粒的尺寸或骨料的孔隙率的构成良好的约束,由晶体硅酸盐的热红外光谱特征中突出的窄峰产生的小橄榄石晶粒组成。为了彻底研究热红外峰,我们对非孔,非球形橄榄石颗粒对光吸收和散射进行了理论论点,然后进行数值验证。我们的研究提供了对经典电动力学框架中发射峰的天颗粒效应背后物理学的完美解释,并令人信服地证明了文献中天粒子发射峰的证据。虽然即使对于半径为$ 10〜 {\ rmμm} $半径的非孔橄榄石颗粒,也可以确定在亚微米尺度上激发的谐振吸收,但它仅对颗粒的热红外光谱产生可忽略的贡献。相比之下,非球形颗粒的孔隙率对峰的强度和波长具有显着影响,而小晶粒集合激发的谐振吸收是在波长的情况下发生的,与表面粗糙度的期望不同。我们最终重申,天文环境中尘埃颗粒的热红外光谱中的双峰是亚微米尺寸的小晶粒的固有诊断特征及其在蓬松和多孔构型中的聚集体颗粒。

A well-established constraint on the size of non-porous olivine grains or the porosity of aggregates consisting of small olivine grains from prominent narrow peaks in thermal infrared spectra characteristic of crystalline silicates is reexamined. To thoroughly investigate thermal infrared peaks, we make theoretical argument for the absorption and scattering of light by non-porous, non-spherical olivine particles, which is followed by numerical verification. Our study provides perfectly rational explanations of the physics behind the small-particle effect of emission peaks in the framework of classical electrodynamics and convincing evidence of small-particle's emission peaks in the literature. While resonant absorption excited by surface roughness on the order of submicrometer scales can be identified even for non-porous olivine particles with a radius of $10~{\rm μm}$, it makes only a negligible contribution to thermal infrared spectra of the particles. In contrast, the porosity of non-spherical particles has a significant impact on the strength and wavelength of the peaks, while the resonant absorption excited by an ensemble of small grains takes place at a wavelength different than one expects for surface roughness. We finally reaffirm that twin peaks of olivine in thermal infrared spectra of dust particles in astronomical environments are the intrinsic diagnostic characters of submicrometer-sized small grains and their aggregate particles in fluffy and porous configurations.

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