| Literature DB >> 23429190 |
Maria Eugenia Castro1, Maria Judith Percino, Victor M Chapela, Margarita Ceron, Guillermo Soriano-Moro, Jorge Lopez-Cruz, Francisco J Melendez.
Abstract
A combined theoretical and experimental study on the structure, infrared, UV-Vis and 1HEntities:
Year: 2013 PMID: 23429190 PMCID: PMC3588082 DOI: 10.3390/ijms14024005
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1Molecular structure and numerical conventions of trans-2-(m-cyanostyryl)pyridine (), trans-2-[3-methyl-(m-cyanostyryl)]pyridine () and trans-4-(m-cyanostyryl) pyridine ().
Figure 2Synthesis of trans-2-(m-cyanostyryl)pyridine (), trans-2-[3-methyl-(m-cyanostyryl)] pyridine () and trans-4-(m-cyanostyryl)pyridine ().
Conditions, yields and properties of the styrylpyridine-like model compounds (–).
| Compound | Temp | Time | Yield | Appearance | Melting point | Solubility |
|---|---|---|---|---|---|---|
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| °C | h | % | °C | |||
| 120 | 30 | 72 | white powder | 77–78 | toluene, CHCl3, THF, acetone, EtOH, MeOH, DMSO | |
| 140 | 22 | 59 | beige powder | 68–78 | CHCl3, THF, acetone, MeOH, DMSO | |
| 120 | 30 | 63 | beige powder | 63–65 | hexane, cyclohexane, toluene, CHCl3, THF, acetone, EtOH, MeOH, DMSO | |
Figure 3Isocontour potential energy maps as a function of θ1 and θ2 torsional angles of 2-styrylpyridine, trans-2-(m-cyanostyryl)pyridine (), trans-2-[3-methyl-(m-cyanostyryl)] pyridine () and trans-4-(m-cyanostyryl)pyridine () obtained at the B3LYP/6-311 + G(d,p) theory level. The structures at the minima and maximum are included.
Relative energies in (kJ mol−1) calculated at the B3LYP/6-311 + G(d,p) theory level and populations in (%) of the styrylpyridine-like model compounds (–) for different rotamers, with θ1 and θ2 dihedral angles in (°).
| 2-Styrylpyridine | |||||
|---|---|---|---|---|---|
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| θ1, θ2 | Relative energy | Population | θ1, θ2 | Relative energy | Population |
| 0.0, 0.0 | 0.000 | 11.847 | 0.0, 0.0 | 0.000 | 6.854 |
| 0.0, 180.0 | 4.647 | 1.797 | 0.0, 180.0 | 6.459 | 0.076 |
| 30.0, 30.0 | 8.113 | 0.087 | 30.0, 30.0 | 7.903 | 0.064 |
| 60.0, 60.0 | 31.821 | 0.002 | 60.0, 60.0 | 31.532 | 0.001 |
| 90.0, 0.0 | 20.033 | 0.008 | 90.0, 0.0 | 19.088 | 0.003 |
| 90.0, 90.0 | 45.815 | 0.000 | 90.0, 90.0 | 45.658 | 0.000 |
| 90.0, 180.0 | 25.074 | 0.009 | 90.0, 180.0 | 24.916 | 0.003 |
| 180.0, 0.0 | 0.000 | 11.847 | 180.0, 0.0 | 0.630 | 5.254 |
| 180.0, 180.0 | 4.647 | 1.797 | 180.0, 180.0 | 5.277 | 1.231 |
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| 0.0, 0.0 | 0.000 | 6.581 | 0.0, 0.0 | 0.000 | 5.246 |
| 0.0, 180.0 | 6.091 | 0.011 | 0.0, 180.0 | 0.053 | 4.348 |
| 30.0, 30.0 | 7.850 | 0.025 | 30.0, 30.0 | 2.757 | 0.077 |
| 60.0, 60.0 | 31.296 | 0.007 | 60.0, 60.0 | 19.770 | 0.004 |
| 90.0, 0.0 | 19.114 | 0.005 | 90.0, 0.0 | 18.168 | 0.002 |
| 90.0, 90.0 | 45.290 | 0.001 | 90.0, 90.0 | 33.712 | 0.001 |
| 90.0, 180.0 | 24.627 | 0.013 | 90.0, 180.0 | 25.074 | 0.005 |
| 180.0, 0.0 | 0.525 | 5.541 | 180.0, 0.0 | 0.000 | 5.056 |
| 180.0, 180.0 | 5.094 | 0.897 | 180.0, 180.0 | 0.053 | 4.348 |
Theoretical structural parameters of the equilibrium structures of the styrylpyridine-like model compounds (–) calculated at the B3LYP/6-311 + G(d,p) theory level. The numbering convention is shown in Figure 1. Internuclear distances in (Å), valence and dihedral angles in (°).
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|---|---|---|---|---|---|---|
| Parameter | Gas | PCM | Gas | PCM | Gas | PCM |
| 7–8 | 1.344 | 1.344 | 1.344 | 1.344 | 1.344 | 1.345 |
| 7–1 | 1.467 | 1.467 | 1.468 | 1.468 | 1.465 | 1.465 |
| 8–1′ | 1.465 | 1.465 | 1.464 | 1.465 | 1.466 | 1.466 |
| 4–3 | 1.397 | 1.397 | 1.339 | 1.402 | 1.335 | 1.338 |
| 3–2 | 1.330 | 1.332 | 1.335 | 1.337 | 1.392 | 1.391 |
| 2–1 | 1.347 | 1.349 | 1.346 | 1.346 | 1.402 | 1.403 |
| 3′–C | 1.433 | 1.432 | 1.432 | 1.432 | 1.432 | 1.431 |
| C≡N | 1.156 | 1.156 | 1.155 | 1.156 | 1.155 | 1.156 |
| 1–7–8 | 124.1 | 124.5 | 124.1 | 124.5 | 126.5 | 126.1 |
| 2–1–7 | 118.5 | 118.7 | 118.4 | 118.7 | 119.3 | 119.3 |
| 7–8–1′ | 127.1 | 127.0 | 127.2 | 127.0 | 126.9 | 126.7 |
| 2′–3′–C | 119.6 | 119.5 | 119.6 | 119.5 | 119.7 | 119.6 |
| 3′–C≡N | 180.0 | 179.9 | 179.9 | 179.9 | 179.9 | 179.9 |
| 2–1–7–8 | 0.1 | 0.0 | 0.4 | 0.1 | 179.3 | 176.9 |
| 1–7–8–1′ | 180.0 | 180.0 | 180.0 | 180.0 | 180.0 | 180.0 |
| 7–8–1′–2′ | 0.4 | 0.3 | 0.7 | 0.2 | 179.2 | 176.6 |
| C–3–2–1 | --- | --- | 179.9 | 180.0 | --- | --- |
| 1′–2′–3′–C | 180.0 | 180.0 | 180.0 | 180.0 | 180.0 | 179.9 |
7–8–1′–6′ for molecule .
Calculated B3LYP/6-311 + G(d,p) and experimental harmonic frequencies in (cm−1) of the 2-styrylpyridine and – compounds.
| 2-Styrylpyridine | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
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| Assignment | Gas | PCM | Exp | Gas | PCM | Exp | Gas | PCM | Exp | Gas | PCM | Exp |
| δ(C–H) out of plane in | 981.5 | 982.5 | 985s | 971.4 | 972.5 | 983 s | 968.3 | 972.3 | 973s | 970.3 | 973.0 | 975 s |
| ν(C=C)Py | 1407.5 | 1405.7 | 1426 s | 1410.0 | 1408.8 | 1431 s | 1550.6 | 1546.7 | 1481 w | 1390.2 | 1389.7 | 1418 s |
| ν(C=N)Py | 1446.8 | 1446.5 | 1468 s | 1457.6 | 1457.1 | 1476 s | 1576.6 | 1574.2 | 1580 s | 1471.6 | 1472.2 | 1481 s |
| [ν(C=N) + ν(C=C)]Py | 1471.9 | 1470.6 | 1494 s | 1544.0 | 1541.6 | 1491 w | ------ | ------ | ------ | 1530.6 | 1526.4 | 1549 s |
| ν(C=N)Py + ν(C=C)Ph | 1556.1 | 1553.7 | 1580 s | 1576.9 | 1574.6 | 1584s | ------ | ------ | ------ | 1578.0 | 1575.9 | 1594 s |
| ν(C=C) | 1625.9 | 1624.1 | 1635 m | 1628.3 | 1626.7 | 1638 m | 1628.9 | 1626.8 | 1641 m | 1628.2 | 1625.7 | 1640 m |
| ν(C≡N) | --- | --- | --- | 2250.5 | 2242.6 | 2232 s | 2250.3 | 2242.5 | 2231 s | 2252.3 | 2244.0 | 2230 s |
| ν(C–H)Py | 3055.7 | 3061.4 | 3074 m | 3034.2 | 3036.2 | 3066 m | 3079.4 | 3081.3 | 3032 w | 3043.1 | 3046.6 | 3065 m |
| ν(C–H)Ph | 3078.8 | 3080.1 | 3141 w | 3090.5 | 3092.0 | 3146 w | 3089.7 | 3091.8 | 3079 m | 3090.5 | 3093.3 | 3154 w |
| δ−as(CH3) | --- | --- | --- | --- | --- | --- | 1020.9 | 1019.8 | 1036 m | --- | --- | --- |
| δs(CH3) | --- | --- | --- | --- | --- | --- | 1360.8 | 1356.7 | 1374 m | --- | --- | --- |
| δ+as(CH3) | --- | --- | --- | --- | --- | --- | 1446.0 | 1439.6 | 1451 s | --- | --- | --- |
| νs(CH3) | --- | --- | --- | --- | --- | --- | 2928.2 | 2926.9 | 2925 m | --- | --- | --- |
| νas(CH3) | --- | --- | --- | --- | --- | --- | 2982.6 | 2980.0 | 2959 s | --- | --- | --- |
Data IR(KBr) experimental in [27];
IR(KBr) experimental data obtained in this work.
Electronic transition, their assignments, the absorption maxima and oscillator strengths of the 2-styrylpyridine and – compounds calculated at the B3LYP/6-31G(d)//B3LYP/6-311 + G(d,p) theory level.
| Electronic transition | Absorption maxima (nm (eV)) | Oscillator strengths | MO/Character (% Coefficient) | Experimental (nm (eV)) | |||
|---|---|---|---|---|---|---|---|
| Gas | PCM | Gas | PCM | ||||
| 2-styrylpyridine | S0–S1 | 311.6 (3.98) | 323.3 (3.83) | 0.8922 | 1.0597 | HOMO→LUMO (98%) | 311.0 (3.99) |
| S0–S2 | 291.2 (4.26) | 288.1 (4.30) | 0.0014 | 0.0014 | HOMO-2→LUMO (97%) | ||
| S0–S3 | 270.9 (4.58) | 271.6 (4.57) | 0.0030 | 0.0049 | HOMO-1→LUMO (74%) + HOMO→LUMO+2 (25%) | ||
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| S0–S1 | 309.3 (4.01) | 320.9 (3.86) | 0.9656 | 1.1193 | HOMO→LUMO (98%) | 309.6 (4.01) | |
| S0–S2 | 298.4 (4.16) | 300.5 (4.13) | 0.0010 | 0.0133 | HOMO-1→LUMO (96%) | ||
| S0–S3 | 295.7 (4.19) | 295.2 (4.20) | 0.0116 | 0.0012 | HOMO→LUMO + 1 (86%) + HOMO-2→LUMO (12%) | ||
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| S0–S1 | 312.7 (3.96) | 324.1 (3.83) | 0.9432 | 1.0916 | HOMO→LUMO (97%) | 312.0 (3.98) | |
| S0–S2 | 302.7 (4.10) | 302.8 (4.10) | 0.0010 | 0.0141 | HOMO-1→LUMO (96%) | ||
| S0–S3 | 297.7 (4.16) | 300.3 (4.13) | 0.0088 | 0.0012 | HOMO→LUMO + 1 (82%) + HOMO-2→LUMO (14%) | ||
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| S0–S1 | 307.2 (4.04) | 318.3 (3.89) | 0.7615 | 0.9422 | HOMO→LUMO (98%) | 293.6 (4.23) | |
| S0–S2 | 285.4 (4.34) | 296.9 (4.18) | 0.1545 | 0.1452 | HOMO→LUMO + 1 (71%) + HOMO-3→LUMO (24%) | ||
| S0–S3 | 309.0 (4.01) | 288.1 (4.30) | 0.0021 | 0.0018 | HOMO-1→LUMO (93%) | ||
Orbital energies (au) and Gap energies (eV) of the 2-styrylpyridine and – compounds calculated at the B3LYP/6-31G(d)//B3LYP/6-311 + G(d,p) theory level.
| ЄHOMO-1 | ЄHOMO | ЄLUMO | ЄLUMO+1 | Gap energy | ||||||
|---|---|---|---|---|---|---|---|---|---|---|
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| Gas | PCM | Gas | PCM | Gas | PCM | Gas | PCM | Gas | PCM | |
| 2-stypy | −0.2625 | −0.2654 | −0.2201 | −0.2234 | −0.0714 | −0.0747 | −0.0340 | −0.0361 | 4.04 | 4.04 |
| −0.2742 | −0.2737 | −0.2366 | −0.2340 | −0.0867 | −0.0841 | −0.0638 | −0.0647 | 4.08 | 4.08 | |
| −0.2702 | −0.2698 | −0.2338 | −0.2317 | −0.0848 | −0.0828 | −0.0629 | −0.0643 | 4.05 | 4.05 | |
| −0.2727 | −0.2749 | −0.2491 | −0.2429 | −0.0979 | −0.0920 | −0.0684 | −0.0646 | 4.11 | 4.10 | |
Figure 4Main molecular orbitals of 2-styrylpyridine, trans-2-(m-cyanostyryl)pyridine (), trans-2-[3-methyl-(m-cyanostyryl)]pyridine () and trans-4-(m-cyanostyryl)pyridine () obtained at the TD-B3LYP/6-311 + G(d,p) theory level.
Theoretical and experimental 1H NMR chemical shifts (ppm) of the 2-styrylpyridine and – compounds calculated at the B3LYP/6-311 + G(2d,p)//B3LYP/6-311 + G(d,p) theory level. All values are referenced to the chemical shift of TMS computed at the same theory level.
| Chemical shifts, δ (ppm) | |||||||
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| 2-styrylpyridine | |||||||
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| Gas | PCM | Exp | Gas | PCM | Exp | ||
| H3 (d, 1H) | 8.964 | 8.993 | 8.653–8.639 | H3 (d, 1H) | 8.916 | 8.942 | 8.620–8.609 |
| H6′, H2′ (m, 2H) | 8.148–7.645 | 8.285–7.752 | 7.630–7.613 | H2′ (s, 1H) | 8.425 | 8.582 | 7.818 |
| H7 (d, 1H) | 7.418 | 7.594 | 7.240–7.186 | H7 (m, 2H) | 7.462 | 7.629 | 7.204–7.164 |
| H8 (d, 1H) | 8.461 | 8.362 | 7.708–7.654 | H8 (d, 2H) | 8.406 | 8.335 | 7.632–7.592 |
| H5′, H3′ (m, 3H) | 7.593–7.544 | 7.716–7.684 | 7.416–7.310 | H5′ (m, 1H) | 7.818 | 8.021 | 7.488–7.442 |
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| H (s, 3H, CH3) | 2.714 | 2.704 | 2.599 | H3, H5 (d, 2H) | 8.952 | 8.936 | 8.605–8.585 |
| H2′ (s, 2H) | 8.419 | 8.577 | 7.827 | H2′ (s, 1H) | 7.783 | 7.971 | 7.791 |
| H7 (d, 1H) | 7.408 | 7.569 | 7.220–7.180 | H7 (d, 1H) | 7.574 | 7.746 | 7.074–7.020 |
| H8 (d, 1H) | 8.379 | 8.304 | 7.605–7.564 | H8 (d, 1H) | 7.365 | 7.525 | 7.261–7.207 |
| H4′ (d, 1H) | 7.677 | 7.837 | 7.796–7.777 | H2, H6 (m, 2H) | 8.220 | 8.444 | 7.365–7.350 |
Experimental values from [24] obtained to 400 MHz in CDCl3;
Experimental values in this work obtained to 300 MHz in CDCl3.
Figure 5Total electron density mapped with the electrostatic potential of 2-styrylpyridine, trans-2-(m-cyanostyryl)pyridine (), trans-2-[3-methyl-(m-cyanostyryl)]pyridine () and trans-4-(m-cyanostyryl)pyridine () obtained at the TD-B3LYP/6-311 + G(d,p) theory level.