| Literature DB >> 30344767 |
Henrike Ehrhorn1, Janin Schlösser1, Dirk Bockfeld1, Matthias Tamm1.
Abstract
The molybdenum and tungsten complexes M2(OR)6 (Mo2F6, M = Mo, R = C(CF3)2Me; W2F3, M = W, R = OC(CF3)Me2) were synthesized as bimetallic congeners of the highly active alkyne metathesis catalysts [MesC≡M{OC(CF3) n Me3- n }] (MoF6, M = Mo, n = 2; WF3, M = W, n = 1; Mes = 2,4,6-trimethylphenyl). The corresponding benzylidyne complex [PhC≡W{OC(CF3)Me2}] (W Ph F3) was prepared by cleaving the W≡W bond in W2F3 with 1-phenyl-1-propyne. The catalytic alkyne metathesis activity of these metal complexes was determined in the self-metathesis, ring-closing alkyne metathesis and cross-metathesis of internal and terminal alkynes, revealing an almost equally high metathesis activity for the bimetallic tungsten complex W2F3 and the alkylidyne complex W Ph F3. In contrast, Mo2F6 displayed no significant activity in alkyne metathesis.Entities:
Keywords: alkylidyne complexes; alkyne metathesis; catalysis; terminal alkynes; tungsten
Year: 2018 PMID: 30344767 PMCID: PMC6178283 DOI: 10.3762/bjoc.14.220
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Figure 1Selected homogeneous catalysts for alkyne metathesis.
Scheme 1Synthesis of alkylidyne complex V from bimetallic [(t-BuO)3W≡W(Ot-Bu)3]; the catalytically active ditungsten complex [W2(MMPO)6] (VI, MMPO = 1-methoxy-2-methylpropan-2-ol) [68].
Scheme 2Synthesis of hexakis(fluoroalkoxide) dimers Mo2F6 [73] and W2F3.
Figure 2Molecular structure of W2F3·NHMe2 with thermal displacement parameters drawn at 50% probability. Hydrogen atoms are omitted for clarity.
Selected bond lengths [Å] and angles [°]:
| Bond | Bond length [Å] | Bond angle | Angle [°] | Bond angle | Angle [°] |
| W1–W2 | 2.3452(2) | O1–W1–O2 | 93.75(11) | O5-W2-O4 | 122.91(11) |
| W1–O1 | 1.905(2) | O1–W1–O3 | 145.01(10) | O1–W1–W2 | 104.75(8) |
| W1–O2 | 1.911(3) | O2–W1–O3 | 91.61(11) | O2–W1–W2 | 108.97(8) |
| W1–O3 | 1.970(2) | O1–W1–N | 82.15(11) | O3–W1–W2 | 106.06(7) |
| W1–N | 2.270(3) | O2–W1–N | 159.81(11) | N–W1–W2 | 91.17(8) |
| W2–O4 | 1.930(2) | O3–W1–N | 81.06(11) | O4–W2–W1 | 98.33(7 |
| W2–O5 | 1.818(2) | O6–W2–O5 | 110.53(11) | O5–W2–W1 | 99.29(7) |
| W2–O6 | 1.872(2) | O6–W2–O4 | 112.06(11) | O6–W2–W1 | 111.85(8) |
Scheme 3Preparation of the alkylidyne complex WF3.
Figure 3Molecular structure of WF3 with thermal displacement parameters drawn at 50% probability. Hydrogen atoms and minor components of the disordered OC(CF3)Me2 groups are omitted for clarity.
Scheme 4Self-metathesis of 1-phenyl-1-propyne derivatives by tungsten complexes W2F3 and WF3.
Figure 4Conversion versus time diagram for the self-metathesis of 1-phenyl-1-propyne catalyzed by 0.5 mol % W2F3 (grey) and 1 mol % WF3 (black).
Alkyne metathesis of different substrates.a
| Entry | Substrate | Product | Cat. | R | Yield [%] |
| 1 | 96 | ||||
| 2 | 95 | ||||
| 3 | 94 | ||||
| 4 | 98 | ||||
| 5 | R = Me | 96 | |||
| R = Me | 94 | ||||
| 6 | R = Me | 93 | |||
| R = Me | 94 | ||||
| 7 | 86 | ||||
| 8 | 93 | ||||
aSelf-metathesis: substrate (0.5 mmol), catalyst (0.5 mol % W2F3; 1 mol % WF3), toluene (internal alkynes: 2.5 mL, 200 mM; terminal alkynes: 24 mL, 21 mM), MS 5 Å (500 mg), 25 °C, 2 h. RCAM: substrate (0.5 mmol), catalyst (1 mol % W2F3; 2 mol % WF3), toluene (24 mL, 21 mM), MS 5 Å (1.0 g), 25 °C, 2 h.
Alkyne cross metathesis (ACM) with catalyst W2F3.a
| Entry | Substrates | Product | Cat. | Yield [%] | |
| 1 | 0.5 mol % | 87 | |||
| 2 | 1 mol % | 82 | |||
| 3 | 0.5 mol % | 93 | |||
| 4 | 0.5 mol % | 92 | |||
aSubstrate (0.5 mmol), TMS-propyne or TMS-acetylene (1 mmol), toluene (internal alkynes: 2.5 mL, terminal alkynes: 24 mL), MS 5 Å (500 mg), 25 °C, 2 h.