| Literature DB >> 28083089 |
Abstract
The origin of the diffuse interstellar bands (class="Chemical">DIBs), one of the longest-standing mysteries of the interstellar medium (ISM), is explored witEntities:
Keywords: dust extinction; interstellar dust; interstellar molecules
Year: 2016 PMID: 28083089 PMCID: PMC5210671 DOI: 10.1098/rsos.160223
Source DB: PubMed Journal: R Soc Open Sci ISSN: 2054-5703 Impact factor: 2.963
Hydrocarbon chemical complexity in the ISM. In column 1, the prefix c- indicates that a stable cyclic form exists in addition to the chain and branched-chain isomers. The approximation of the number of most probable different forms is given by (i×n×b×h×[2n+3])/2. The dehydrogenated states (column 5) does not count the number of different configurations possible for each n and is therefore only the lower limit.
| structure ( | no. of atoms ( | no. of isomers ( | no. of hetero-atomic isomers ( | minimum no. of (de)hydrogenated states (2 | ≈ no. of possible forms |
|---|---|---|---|---|---|
| (CX | 1 | 1 | 1 [0] | 5 | 5 |
| (CX | 2 | 1 | 1 [0] | 7 | 14 |
| c-(CX | 3 | 2 | 2 [2] | 9 | 108 |
| c-(CX | 4 | 2 | 2 [0] | 11 | 176 |
| c-(CX | 5 | 4 | 3 [1] | 13 | 780 |
| c-(CX | 6 | 6 | 3 [1] | 15 | 1620 |
Polycyclic (hetero-)aromatic nomenclature.
| name | formula | descriptor |
|---|---|---|
| benzene | C6H6 | S |
| naphthalene | C10H8 | S2 |
| azulene | C10H8 | GP |
| biphenyl | C12H10 | S–S |
| fluorene | C13H10 | SP′S |
| anthracene | C14H10 | S3 |
| phenanthrene | C14H10 | S3 |
| pyrene | C16H10 | S4 |
| 2,3-benzofluorene | C17H12 | S2P′S |
| benz[a]anthracene | C18H12 | S4 |
| chrysene | C18H12 | S4 |
| triphenylene | C18H12 | S4 |
| corannulene | C20H10 | S5P |
| perylene | C20H12 | S5 |
| benzo[ghi]perylene | C22H12 | S6 |
| coronene | C24H12 | S7 |
| fullerene | C60 | S2012×P |
In fullerene, the 12 pentagons are isolated, hence, the descriptor should be S20PPPPPPPPPPPP, but this is rather cumbersome and so a simplified 12×P descriptor is used above.
Some typical asphaltene structures ordered by an increasing number of carbon atoms in ring structures, N, the number of rings, N, and the ring variety, S SP GSP. The lines separating species with more than 30 C atoms from those with fewer indicate the approximate limit for the size of the aromatic-rich species in the diffuse ISM (e.g. [19]).
| asphaltene specimen | N | N | C atoms per ring N | methyl side groups (–CH3) | alkyl side groups (–R) | descriptor |
|---|---|---|---|---|---|---|
| S systems (sixfold rings) | ||||||
| CA36 | 22 | 5 | 4.4 | 1 | 2 | S4–S |
| CA74 | 22 | 6 | 3.7 | 0 | 1 | S6 |
| CA49 | 24 | 6 | 4.0 | 0 | 2 | S4S |
| CA12 | 25 | 6 | 4.2 | 1 | 0 | S6 |
| CA47 | 25 | 7 | 3.6 | 0 | 1 | S |
| CA44 | 25 | 7 | 3.6 | 1 | 0 | S7 |
| CA22 | 25 | 7 | 3.6 | 0 | 0 | S |
| CA65 | 26 | 7 | 3.7 | 0 | 0 | S7 |
| CA1 | 28 | 8 | 3.5 | 1 | 0 | S8 |
| CA9 | 28 | 8 | 3.5 | 1 | 0 | S8 |
| CA61 | 28 | 8 | 3.5 | 0 | 0 | S8 |
| CA14 | 30 | 9 | 3.3 | 1 | 0 | S9 |
| CA34 | 32 | 7 | 4.6 | 0 | 1 | S4–S3 |
| CA7 | 32 | 9 | 3.6 | 1 | 0 | S9 |
| CA79 | 34 | 10 | 3.4 | 1 | 3 | S10 |
| CA5 | 35 | 11 | 3.2 | 0 | 2 | S11 |
| CA72 | 40 | 11 | 3.6 | 0 | 3 | S11 |
| CA6 | 58 | 18 | 3.2 | 0 | 0 | S18 |
| SP systems (six- and fivefold rings) | ||||||
| CA21 | 18 | 5 | 3.6 | 0 | 0 | S4P |
| CA23 | 20 | 5 | 4.0 | 2 | 0 | SP |
| CA41 | 20 | 5 | 4.0 | 0 | 1 | S3P |
| CA95 | 20 | 6 | 3.3 | 2 | 0 | S |
| CA54 | 30 | 8 | 3.8 | 1 | 2 | S6P |
| PA3 | 30 | 9 | 3.3 | 1 | 2 | S3P |
| CA48 | 31 | 9 | 3.4 | 1 | 0 | S6S |
| CA2 | 34 | 9 | 3.8 | 1 | 0 | S4PS4 |
| CA13 | 34 | 9 | 3.8 | 0 | 0 | S7PS |
| CA39 | 40 | 8 | 5.0 | 1 | 0 | S6P |
| CA91 | 42 | 12 | 3.5 | 0 | 4 | S11P |
| CA16 | 44 | 11 | 4.0 | 0 | 0 | S3P |
| CA60 | 46 | 14 | 3.3 | 0 | 4 | S9PS2P |
| CA15 | 54 | 15 | 3.6 | 0 | 0 | S3PS8P |
| GSP systems (seven-, six- and fivefold rings) | ||||||
| CA3 | 40 | 12 | 3.3 | 3 | 0 | S5P′GPS2P′S |
Notes: The number of C atoms in rings ignores pendant alkyl side groups (–R) such as –CH3.
P′ indicates fivefold (P) ring sites with single methylene, –CH2– substitutions.
S and P (P) indicate peripheral sixfold (S) and fivefold (P) ring sites with single (double) hetero-atom substitutions (i.e. hetero-cycles).
The asphaltene PA3 is from virgin crude oil and did not undergo further treatment, all the other analysed asphaltenes (CAs) are derived from coal.
Figure 1.A proposed pathway for the dehydrogenation of C18H12 (S4) benz[a]anthracene to C18H. A further single hydrogen atom dehydrogenation would then form a C18H ion.
Figure 2.A proposed pathway for the dehydrogenation of the C18H cation to C. The double ring structure in the upper and middle right shows the most probably bicyclic form of the C18H cation, i.e. an ortho-substituted sixfold ring with a 12-carbon atom cumulene-type ring [13–15].
Figure 3.An alternative pathway for the dehydrogenation of C18H12 (S4) benz[a]anthracene to C18H. The bracketed hydrogen atom, (H), in the lower left ion indicates a site than could be dehydrogenated to form a C18H ion.
Figure 4.The follow-on to the alternative dehydrogenation pathway for the C18H cation to C. In this case, the formation of a different bicyclic cation, C18H, occurs somewhat later in the dehydrogenation sequence.
Figure 5.One possible pathway for the dehydrogenation of the C24H (S7) coronene cation to C24H.
Figure 6.A second possible pathway for the dehydrogenation of the C24H (S7) coronene cation leading to C24H structure with a different but equally symmetric structure.
Figure 7.A possible pathway for the dehydrogenation of the C24H ion leading to C, which is assumed to have a cumulene-type ring structure.
Figure 8.A proposed ‘ring of rings’ family of molecules: couronene, C24H12 (S6, upper left), the structure for a concatenated cycle of aromatic rings with generic formula (C4H2) (S, upper right). If all the carbon atoms are sp3, then the aliphatic multi-ring structure is a couronane, C24H36, generically (C4H6), where n≥6. Mixed aliphatic/aromatic ring structures would then be courone-anes, with the generic formula (C4H2−6), where n≥6.
Figure 9.A Jablonski diagram showing the possible transitions for species with low-lying electronically excited states. In general, the electronic ground state is a singlet (spin = 0) and the low-lying electronically excited state a triplet (spin = 1).
Figure 10.The mechanics of the cis- to trans-isomerization of the molecular ‘light switch’ retinal (upper left grey box). A schematic view of the possible evolution of a fully conjugated, N-substituted hetero-cyclic (quinoline), a-C:H nanoparticle C14H photo-fragment (bottom and right) from an aromatic/olefinic species (left) to an imine-terminated polyene (right).
Figure 11.A visual summary of the stability of carbon clusters in terms of their structure and shape taken from the cited references, horizontal black lines, and C21H12 and C28 clusters [78–81]. The horizontal red line shows the range of possible polyene sizes discussed in §6.5.
Figure 12.A schematic view of the hierarchal top-down route to the formation of the DIBs carriers by fragmentation and their formation, evolution and destruction by UV photo-processing.
Figure 13.Hetero-cyclic species (PXX, SPX, S, SPXS and S, with X=N, O or S) with 5–15 heavy atoms and interesting DIB colour-related properties, including that: many of them are coloured, they and their derivatives are used in dye-making and/or photo-receptors, some of them fluoresce when exposed to UV and all are stable species widespread in nature.
Figure 14.Four likely DIB precursor molecules, with 17–24 heavy atoms and the following structures S2POPNS, S2POSGSPN, S4P′ and S2PNS. The lower part of the figure shows their ionized and ≈50% dehydrogenated forms, 〈H]S2POPNS+, 〈H]S2POSGSPN+, 〈H]S4P′+ and 〈H]S2PNS+: such polycyclic, hetero-cyclic, radical cations could be candidate DIB carriers.
Figure 15.A schematic scenario for a top-down evolution of the DIB carriers. Note that the proposed DIB carrier, 〈H]SPOPNS+, is shown with unrealistically abundant hetero-atoms (N, O and Si) in order to illustrate the possible evolutionary pathways that will need to be explored in more detail.