| Literature DB >> 24786690 |
Jean I du Toit1, Margaritha Jordaan2, Carlijn A A Huijsmans3, Johannes H L Jordaan4, Cornelia G C E van Sittert5, Hermanus C M Vosloo6.
Abstract
Hemilabile ligands can release a free coordination site "on demand" of an incoming nucleophilic substrate while occupying it otherwise. This is believed to increase the thermal stability and activity of catalytic systems and therefore prevent decomposition via free coordination sites. In this investigation chelating pyridinyl-alcoholato ligands were identified as possible hemilabile ligands for incorporation into the second generationEntities:
Mesh:
Substances:
Year: 2014 PMID: 24786690 PMCID: PMC6272008 DOI: 10.3390/molecules19055522
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Grubbs-type precatalysts.
Figure 2Design concepts for thermally switchable initiators [7,8,9,10,11,12,13].
Selected 1H-NMR signals of the second generation hemilabile complexes as compared to the free O,N-ligands and 2.
| Catalyst | δH* | δH† a | δH† b |
|---|---|---|---|
| 2 | 19.19, s | - | - |
| 5 | 17.96, s | 9.55, d | 8.48, d |
| 6 | 17.18, s | 9.67, d | 8.50, d |
| 7 | 17.32, s | 9.75, d | 8.59, d |
| 8 | 17.31, s | 9.87, d | 8.54, d |
| 9 | 17.33, s | 9.39, d | 8.44, d |
| 10 | 17.82, s | 9.15, d | 8.49, d |
| 11 | 18.52, s | 9.65, d | 8.52, d |
| 12 | 18.25, s | 7.75, d | 8.77, d |
a carbene α-H signal (denoted H*) and pyridine α-H signal (denoted as H†) of the hemilabile complexes; b pyridine α-H signal (denoted as H†) of the pyridinyl carbinol ligands.
Possible reactions of 1-octene in the presence of metathesis catalysts [24].
| Reaction | Substrate a | Products a | |
|---|---|---|---|
| Primary metathesis | |||
|
| C=C7 | C=C + C7=C7 | (PMP) b |
|
| C=C7 | C2=C6 + C3=C5 + C4=C4 | (IP) c |
| Secondary metathesis | |||
|
| C=C7 + C2=C6 | C2=C7 + C=C6 + C=C2 + C6=C7 | (SMP) d |
|
| C2=C6 | C2=C2 + C6=C6 |
a Hydrogens are omitted and geometrical isomers not shown for simplicity; b Primary metathesis products (PMP) refers to the self-metathesis products of 1-octene, i.e., C7=C7 and C=C; c Isomerisation products (IP) refers to the double bond isomerisation reaction of terminal to internal alkenes; d Secondary metathesis products (SMP) refers to the metathesis of the isomerisation products of 1-octene.
Catalytic activity and selectivity of the precatalysts at 60 °C (1-octene/Ru = 9000, no solvent) after 420 min.
| Precatalyst | %PMP a | %SMP b | %IP c | %S d | TON | TOF |
|---|---|---|---|---|---|---|
| 2 | 80.6 | 3.7 | 0 | 96.3 | 7254 | 1036 |
| 5 | 80.4 | 13 | 0 | 85.5 | 7236 | 1034 |
| 6 | 35.6 | 0.9 | 0 | 99.1 | 3204 | 458 |
| 7 | 20 | 3.7 | 0.9 | 95.3 | 1800 | 257 |
| 8 | 80.6 | 18.6 | 0.1 | 80 | 7254 | 1036 |
| 9 | 48 | 6.8 | 0.5 | 92.7 | 4320 | 617 |
| 10 | 74 | 21.8 | 0 | 78.2 | 6660 | 951 |
| 11 | 86.5 | 12.4 | 0 | 86.1 | 7785 | 1,112 |
| 12 | 0.4 | 0 | 0.2 | 99.8 | 36 | 5 |
a C=C + C7=C7; b C2=C7 + C=C6 + C=C2 + C6=C7; c C2=C6 + C3=C5 + C4=C4; d Selectivity towards PMP.
Catalytic activity and selectivity of the precatalysts at 60 °C (1-octene/Ru = 9000, no solvent) after 10 h up to 1.5 days.
| Precatalyst | %PMP a | %SMP b | %IP c | %S d | t (min) e | TON | TOF |
|---|---|---|---|---|---|---|---|
| 2 | 81.6 | 3.6 | 0 | 96.4 | 1200 | 7344 | 367 |
| 5 | 87.8 | 12.2 | 0 | 84.4 | 1246 | 7902 | 381 |
| 6 | 70.3 | 2.8 | 0 | 97.2 | 1200 | 6327 | 316 |
| 7 | 94 | 5.5 | 0 | 94.5 | 2098 | 8460 | 242 |
| 8 | 80 | 19.9 | 0 | 80.1 | 630 | 7200 | 686 |
| 9 | 88.2 | 11.5 | 0 | 88.5 | 1121 | 7938 | 425 |
| 10 | 82.3 | 17 | 0 | 75.8 | 1246 | 7407 | 357 |
| 11 | 86.5 | 12.4 | 0 | 86.1 | 1246 | 7785 | 375 |
| 12 | 0.4 | 0 | 0.2 | 99.8 | 1200 | 36 | 2 |
a C=C + C7=C7; b C2=C7 + C=C6 + C=C2 + C6=C7; c C2=C6 + C3=C5 + C4=C4; d Selectivity towards PMP; e Reaction time to maximum conversion.
Figure 3The formation of PMPs during the metathesis of 1-octene in the presence of 2, 5–11 at 60 °C and a 1-octene/complex molar ratio of 9000.
Figure 4Logarithmic plots for the precatalysts at 60 °C and a 1-octene/Ru molar ratio = 9000.
Catalytic activity and selectivity of 7, 8 and 9 at 60 °C and different 1-octene/Ru molar ratios.
| Precatalyst | 1-octene/Ru | %PMP a | %SMP b | t (min) c | TON | TOF |
|---|---|---|---|---|---|---|
| 6 | 7000 | 30.9 | 1.1 | 420 | 2165 | 309 |
| 9000 | 70.3 | 2.8 | 1200 | 6327 | 316 | |
| 7 | 6500 | 93.2 | 6.7 | 1875 | 6058 | 194 |
| 9000 | 94.0 | 5.5 | 2098 | 8460 | 242 | |
| 8 | 4500 | 77.0 | 20.6 | 313 | 3465 | 664 |
| 9000 | 80.0 | 19.9 | 595 | 7200 | 726 | |
| 10,700 | 81.6 | 17.1 | 481 | 8731 | 1,089 | |
| 12,000 | 88.0 | 11.1 | 970 | 10,560 | 653 | |
| 9 | 9000 | 88.2 | 11.5 | 1265 | 7938 | 377 |
| 12,000 | 81.0 | 18.1 | 1244 | 9720 | 469 | |
| 14,000 | 81.9 | 18.0 | 1752 | 11,466 | 393 |
a C=C + C7=C7; b C2=C7 + C=C6 + C=C2 + C6=C7; c Reaction time to maximum conversion.
Catalytic activity and selectivity of 6, 7, 8 and 9 at different temperatures and an 1-octene/Ru molar ratio = 9,000.
| Precatalyst | T (°C) | %PMP a | %SMP b | t (min) c | TON | TOF |
|---|---|---|---|---|---|---|
| 6 | 40 | - | - | 420 | - | - |
| 60 | 70.3 | 2.8 | 1200 | 6327 | 316 | |
| 80 | 74.0 | 11.5 | 420 | 6661 | 952 | |
| 120 | 10.7 | 77.8 | 1256 | 963 | 46 | |
| 7 | 40 | 95.4 | 3.6 | 3224 | 8586 | 160 |
| 60 | 94.0 | 5.5 | 2098 | 8460 | 242 | |
| 80 | 64.9 | 34.4 | 203 | 5841 | 1726 | |
| 8 | 40 | 85.2 | 10.5 | 2463 | 7668 | 187 |
| 60 | 80.0 | 19.9 | 595 | 7200 | 726 | |
| 80 | 63.1 | 35.6 | 323 | 5679 | 1055 | |
| 9 | 40 | 90.2 | 9.4 | 2410 | 8118 | 202 |
| 60 | 88.2 | 11.5 | 1265 | 7938 | 377 | |
| 80 | 64.4 | 35.4 | 981 | 5796 | 354 |
a C=C + C7=C7; b C2=C7 + C=C6 + C=C2 + C6=C7; c Reaction time to maximum conversion.
Figure 5The formation of PMPs during 1-octene metathesis in the presence of 6, 7, 8 and 9 at 40 °C and 80 °C and a 1-octene/Ru molar ratio = 9000.
Catalytic activity and selectivity of 7, 8 and 9 with consecutive additions of 1-octene at 60 °C and an initial 1-octene/Ru molar ratio = 9000.
| Precatalyst | Addition | %PMP a | %SMP b | %S c | t (min) d | TON | TOF |
|---|---|---|---|---|---|---|---|
| 7 | 1 | 94.3 | 5.6 | 94.4 | 2190 | 8487 | 233 |
| 2 | 91.8 | 8.2 | 91.8 | 2067 | 8262 | 240 | |
| 3 | 88.8 | 11.1 | 88.9 | 2246 | 7992 | 213 | |
| 4 | 92.2 | 7.6 | 92.4 | 3822 | 8298 | 130 | |
| 8 | 1 | 80.0 | 19.9 | 80.1 | 630 | 7200 | 686 |
| 2 | 73.4 | 26.1 | 73.8 | 1039 | 6606 | 381 | |
| 3 | 75.5 | 23.8 | 76.0 | 1024 | 6795 | 398 | |
| 4 | 69.1 | 30.6 | 69.3 | 2036 | 6219 | 183 | |
| 5 | 64.6 | 33.6 | 65.8 | 1247 | 5814 | 280 | |
| 9 | 1 | 88.2 | 11.5 | 88.5 | 1298 | 7938 | 367 |
| 2 | 89.5 | 9.4 | 90.5 | 1632 | 8055 | 296 | |
| 3 | 78.2 | 13.8 | 85.0 | 1484 | 7038 | 385 | |
| 4 | 71.7 | 6.2 | 92.0 | 2246 | 6453 | 172 | |
| 5 | 78.8 | 9.8 | 88.9 | 5167 | 7092 | 82 |
a C=C + C7=C7; b C2=C7 + C=C6 + C=C2 + C6=C7; c Selectivity towards PMP, d Reaction time to maximum conversion.
Figure 6The formation of PMPs during metathesis in the presence of 7, 8 and 9 with consecutive additions of 1-octene at 60 °C and an initial 1-octene/Ru molar ratio of 9000.