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多环芳烃离子与漫射星际带

Polycyclic aromatic hydrocarbon ions and the diffuse interstellar bands.

作者信息

Salama F, Allamandola L J

机构信息

NASA-Ames Research Center, Space Science Division, Moffett Field, CA 94035-1000, USA.

出版信息

Adv Space Res. 1995 Mar;15(3):413-22. doi: 10.1016/s0273-1177(99)80112-4.

Abstract

Neutral naphthalene (C10H8), phenanthrene (C14H10), and pyrene (C16H10) absorb strongly in the ultraviolet and may contribute to the extinction curve. High abundances are required to produce detectable structures. The cations of these PAHs absorb in the visible. C10H8+ has 12 discrete absorption bands which fall between 6800 and 5000 angstroms. The strongest band at 6741 angstroms falls close to the weak 6742 angstroms diffuse interstellar band (DIB). Five other weaker bands also match DIBs. The possibility that C10H8+ is responsible for some of the DIBs can be tested by searching for new DIBs at 6520, 6151, and 5965 angstroms, other moderately strong naphthalene cation band positions. If C10H8+ is indeed responsible for the 6742 angstroms feature, it accounts for 0.3% of the cosmic carbon. The spectrum of C16H10+ is dominated by a strong band at 4435 angstroms in an Ar matrix and 4395 angstroms in a Ne matrix, a position which falls very close to the strongest DIB, that at 4430 angstroms. If C16H10+, or a closely related pyrene-like ion is indeed responsible for the 4430 angstroms feature, it accounts for 0.2% of the cosmic carbon. We also report an intense, very broad UV-to-visible continuum which is associated with both ions and could explain how PAHs convert interstellar UV and visible radiation into IR.

摘要

中性萘(C₁₀H₈)、菲(C₁₄H₁₀)和芘(C₁₆H₁₀)在紫外波段有强烈吸收,可能对消光曲线有贡献。需要高丰度才能产生可检测到的结构。这些多环芳烃的阳离子在可见光波段吸收。C₁₀H₈⁺有12个离散吸收带,位于6800至5000埃之间。6741埃处最强的吸收带与较弱的6742埃弥漫星际带(DIB)接近。另外五个较弱的吸收带也与DIB匹配。通过在6520、6151和5965埃(萘阳离子其他中等强度吸收带位置)寻找新的DIB,可以检验C₁₀H₈⁺是否对某些DIB负责。如果C₁₀H₈⁺确实是6742埃特征的原因,它占宇宙碳的0.3%。C₁₆H₁₀⁺的光谱在氩基质中以4435埃的强吸收带为主,在氖基质中以4395埃为主,该位置非常接近最强的DIB,即4430埃处的DIB。如果C₁₆H₁₀⁺或与之密切相关的芘类离子确实是4430埃特征的原因,它占宇宙碳的0.2%。我们还报告了一种强烈、非常宽的紫外到可见光连续谱,它与这两种离子都有关,并且可以解释多环芳烃如何将星际紫外和可见光辐射转化为红外辐射。

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