C–C coupling reactions in the coordination sphere of rhodium(i) and rhodium(iii): New routes for the di- and trimerization of terminal alkynes†
Abstract
The alkynyl(vinylidene)rhodium(I) complexes trans-[Rh(CCR)(
C
CHR)(PiPr3)2]
2, 5, 6 react with CO by migratory insertion to give stereoselectively the butenynyl compounds trans-[Rh{η1-(Z)-C(
CHR)C
CR}(CO)(PiPr3)2]
(Z)-7–9, of which (Z)-7
(R = Ph) and (Z)-8
(R =
tBu) rearrange upon heating or UV irradiation to the (E) isomers. Similarly, trans-[Rh{η1-C(
CH2)C
CPh}(CO)(PiPr3)2]
12 and trans-[Rh{η1-(Z)-C(
CHCO2Me)C
CR}(CO)(PiPr3)2]
(Z)-15, (Z)-16 have been prepared. At room temperature, the corresponding “non-substituted” derivative trans-[Rh{η1-C(
CH2)C
CH}(CO)(PiPr3)2]
18 is in equilibrium with the butatrienyl isomer trans-[Rh(η1-CH
C
C
CH2)(CO)(PiPr3)2]
19 that rearranges photochemically to the alkynyl complex trans-[Rh(C
CCH
CH2)(CO)(PiPr3)2]
20. Reactions of (Z)-7, (E)-7, (Z)-8 and (E)-8 with
CCH
CHR or a mixture of the butenyne and the isomeric
CPh){(Z)-CH
CHPh}(PiPr3)2]
23, which at room temperature reacts by C–C coupling to give trans-[RhCl{η2-(Z)-PhC
CCH
CHPh}(PiPr3)2]
(Z)-21. The related compound trans-[RhCl(η2-HC
CCH
CH2)(PiPr3)2]
27, prepared from trans-[Rh(C
CH)(
C
CH2)(PiPr3)2]
17 and HCl, rearranges to the vinylvinylidene isomer trans-[RhCl(
C
CHCH
CH2)(PiPr3)2]
28. While stepwise reaction of 2 with CF3CO2H yields, via alkynyl(vinyl)rhodium(III) intermediates (Z)-29 and (E)-29, the
CCH
CHPh)(PiPr3)2]
(Z)-30 and (E)-30, from 2 and CH3CO2H the acetato derivative [Rh(κ2-O2CCH3)(PiPr3)2]
33 and (Z)-PhC
CCH
CHPh are obtained. From 6
(R = CO2Me) and HCl or HC
CCO2Me the chelate complexes [RhX(C
CCO2Me){κ2(C,O)-CH
CHC(OMe)
O}(PiPr3)2]
34
(X = Cl) and 35
(X = C
CCO2Me) have been prepared. In contrast to the reactions of [Rh(κ2-O2CCH3)(C
CE)(CH
CHE)(PiPr3)2]
37
(E = CO2Me) with chloride sources which give, via intramolecular C–C coupling, four-coordinate trans-[RhCl{η2-(E)-EC
CCH
CHE}(PiPr3)2]
(E)-36, treatment of 37 with HC
CE affords, via insertion of the
CE){η1-(E,E)-C(
CHE)CH
CHE}(PiPr3)2]
38. The latter reacts with MgCl2 to yield trans-[RhCl{η2-(E,E)-EC
CC(
CHE)CH
CHE}(PiPr3)2]
39, which, in the presence of CO, generates the substituted
CC(
CHE)CH
CHE 40.