| Literature DB >> 31936773 |
Nadi Eleya1,2, Clement Appiah1,2, Enno Lork3, Mathias Gogolin3, Thorsten M Gesing2,3, Tim Stauch2,4, Anne Staubitz1,2.
Abstract
Unique eleven-membered rings containing silicon, germanium, and tin were synthesized in good yields by the reactions of the corresponding 1,2-bis((2-bromothiophen-3-yl)methoxy)benzenes with (C6H5)2ECl2 where E = Sn, Ge, Si. The Sn and Ge congeners were crystallized, but the conformers that these rings crystallized in, were quite different. As confirmed by Density Functional Theory (DFT) calculations, (C28H22O2S2Sn) assumes a unique crystal structure that leaves more room around the tetrel atom as compared to the crystal structure of the corresponding Ge compound. In the latter, the central cavity is quite open, whereas in the former, one of the methylene groups can fold inwards. Another consequence is the influence on the planes of the aromatic rings flanking the heterocycle. In the Ge case, the benzene ring is folded away from the central cavity, whereas in the Sn case, it is almost parallel to the imaginary axis through the center of the ring. Thermal analysis investigations (TGA and DSC methods) of these eleven-membered rings suggested the loss of a phenyl group in the first decomposition step. The decomposition temperature decreased from the Si containing heterocycle to Ge and was lowest for the Sn containing heterocycle.Entities:
Keywords: 11-membered rings; conformation; group 14 elements; tetrels
Mesh:
Substances:
Year: 2020 PMID: 31936773 PMCID: PMC7024359 DOI: 10.3390/molecules25020283
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1The synthetic route for dihydrodibenzo[b,f]metallepin derivatives.
Scheme 2Retrosynthetic analysis for the synthesis of the target molecules.
Scheme 3Synthesic route for 1,2-bis((2-bromothiophen-3-yl)methoxy)benzene 7.
Scheme 4Synthesis of the eleven-membered rings containing the heavier tetrels Si, Ge, and Sn.
Figure 1Molecular structures of compounds 9b and 9c, showing a 50% probability of ellipsoids.
Figure 2Molecular structures of compounds 9b and 9c. In 9b, the CH2 group on C-18 is twisted inwards of the concave side of the molecule, whereas in 9c, the overall larger ring size forces it to twist outwards, and thus opening up the cavity.
Selected interatomic distances and angles of 9b and 9c, and torsion angles.
| 9b (E = Ge) | 9c (E = Sn) | |
|---|---|---|
| Bond Lengths/pm | ||
| E1–C1 | 194.0(1) | 213.1(2) |
| E1–C7 | 194.4(1) | 213.4(2) |
| E1–C22 | 194.7(1) | 213.2(2) |
| E1–C23 | 194.6(1) | 214.6(2) |
| Bond Angels/° | ||
| C1–E1–C7 | 112.56(5) | 110.78(7) |
| C1–E1–C22 | 108.82(5) | 104.33(7) |
| C1–E1–C23 | 109.72(5) | 109.98(7) |
| C7–E1–C23 | 107.94(5) | 103.67(7) |
| C22–E1–C7 | 110.65(5) | 123.99(7) |
| C22–E1–C23 | 107.01(5) | 103.47(7) |
| C13–O2–C18 | 114.20(1) | 117.35(1) |
| O1–C12–C13 | 116.20(1) | 122.18(1) |
| O1–C12–C17 | 124.10(1) | 117.70(1) |
| O2–C13–C12 | 120.60(1) | 115.74(1) |
| O2–C13–C14 | 119.20(1) | 124.60(1) |
| O2–C18–C19 | 107.80(1) | 113.16(1) |
| Torsion Angels/° | ||
| C7–E1–C1–C2 | −131.7(1) | −156.3(1) |
| C7–E1–C1–C6 | 50.0(1) | 27.3(2) |
| C22–E1–C1–C2 | −8.7(1) | −20.7(2) |
| C22–E1–C1–C6 | 173.1(1) | 162.9(2) |
| C1–E1–C7–S1 | −158.5(7) | −128.3(1) |
| C22–E1–C7–S1 | 79.4(8) | 106.6(1) |
| C1–E1–C22–S2 | 77.6(8) | 107.1(1) |
| C7–E1–C22–S2 | −158.2(7) | −125.0(1) |
| C23–E1–C22–S2 | −40.8(8) | −8.0(1) |
| C23–E1–C22–C19 | 147.0(1) | −172.4(2) |
| C11–O1–C12–C13 | −147.2(1) | −56.9(2) |
| C11–O1–C12–C17 | 39.1(2) | 129.7(2) |
| C18–O2–C13–C12 | 68.5(1) | −163.8(2) |
| C18–O2–C13–C14 | −116.7(1) | 14.2(3) |
Energy differences ΔE (kJ/mol) (calculated by DFT) between the crystal structures of compounds 9b and 9c with different group 14 elements (native), as well as analogous structures 9b’ and 9c’ in which oxygen atom 2 was replaced by methylene groups.
| Atom | C | Si | Ge | Sn |
|---|---|---|---|---|
|
| −312.9 | −131.8 | −65.5 | 172.8 |
|
| −359.8 | −190.5 | −127.1 | 103.2 |
Figure 3Thermogravimetric analysis (TGA) of the group 14 element ring systems (Si-containing ring 9a, Ge-containing ring 9b, and Sn-containing ring 9c) at a heating rate of 10 K/min under nitrogen flow of 20 mL/min.
Decomposition (Td(onset), Td(endset), and percent lost segments), Melting temperatures (Tm) and normalized enthalpy of melting of the rings containing Si (9a), Ge (9b), and Sn (9c).
| TGA (Accuracy ± 0.5 °C) | DSC (Accuracy ± 0.2 °C) | ||||||
|---|---|---|---|---|---|---|---|
| Sample | Td1(onset)/°C | Td1f(endset)/°C | Loss/% | Tm(onset)/°C | Tm(endset)/°C | Normalized Enthalpy | |
| /(J/g) | /(kJ/mol) | ||||||
|
| 290.2 | 302.2 | 14 | 105.4 | 113.4 | 5.96 | 2.87 |
|
| 277.6 | 300.3 | 12 | 110.8 | 116 | 46.88 | 24.71 |
|
| 231.8 | 240.4 | 13 | 118.5 | 120.7 | 1.73 | 0.99 |
Td1 represents the first thermal decomposition step for each ring system, Td1f represents the first endset of decomposition, Tm is the melting temperature.
Figure 4DSC heating scans at 10 K/min of the group 14 element ring systems (Sn-containing ring (9c), Ge-containing ring (9b), and Si-containing ring (9a)).