The non-heteroatom-substituted manganese alkynyl carbene complexes (η5-MeC5H4)(CO)2MnC(R)CCR′
(3; 3a: R = R′
= Ph, 3b: R = Ph, R′
= Tol, 3c: R = Tol, R′
= Ph) have been synthesised in high yields upon treatment of the corresponding carbyne complexes [(η5-MeC5H4)(CO)2MnCR][BPh4]
([2][BPh4]) with the appropriate alkynyllithium reagents LiCCR′
(R′
= Ph, Tol). The use of tetraphenylborate as counter anion associated with the cationic carbyne complexes has been decisive. The X-ray structures of (η5-MeC5H4)(CO)2MnC(Tol)CCPh (3c), and its precursor [(η5-MeC5H4)(CO)2MnCTol][BPh4]
([2b](BPh4]) are reported. The reactivity of complexes 3 toward phosphines has been investigated. In the presence of PPh3, complexes 3 act as a Michael acceptor to afford the zwitterionic σ-allenylphosphonium complexes (η5-MeC5H4)(CO)2MnC(R)CC(PPh3)R′
(5) resulting from nucleophilic attack by the phosphine on the remote alkynyl carbon atom. Complexes 5 exhibit a dynamic process in solution, which has been rationalized in terms of a fast [NMR time-scale] rotation of the allene substituents around the allene axis; metrical features within the X-ray structure of (η5-MeC5H4)(CO)2MnC(Ph)CC(PPh3)Tol (5b) support the proposal. In the presence of PMe3, complexes 3 undergo a nucleophilic attack on the carbene carbon atom to give zwitterionic σ-propargylphosphonium complexes (η5-MeC5H4)(CO)2MnC(R)(PMe3)CCR′
(6). Complexes 6 readily isomerise in solution to give the σ-allenylphosphonium complexes (η5-MeC5H4)(CO)2MnC(R′)CC(PMe3)R (7) through a 1,3 shift of the [(η5-MeC5H4)(CO)2Mn] fragment. The nucleophilic attack of PPh2Me on 3 is not selective and leads to a mixture of the σ-propargylphosphonium complexes (η5-MeC5H4)(CO)2MnC(R)(PPh2Me)CCR′
(9) and the σ-allenylphosphonium complexes (η5-MeC5H4)(CO)2MnC(R)CC(PPh2Me)R′
(10). Like complexes 6, complexes 9 readily isomerize to give the σ-allenylphosphonium complexes (η5-MeC5H4)(CO)2MnC(R′)CC(PPh2Me)R (10′). Upon gentle heating, complexes 7, and mixtures of 10 and 10′ cyclise to give the σ-dihydrophospholium complexes (η5-MeC5H4)(CO)2MnCC(R′)PMe2CH2CH(R)
(8), and mixtures of complexes (η5-MeC5H4)(CO)2MnCC(Ph)PPh2CH2CH(Tol)
(11) and (η5-MeC5H4)(CO)2MnCC(Tol)PMe2CH2CH(Ph)
(11′), respectively. The reactions of complexes 3 with secondary phosphines HPR12
(R1
= Ph, Cy) give a mixture of the η2-allene complexes (η5-MeC5H4)(CO)2Mn[η2-{R12PC(R)CC(R′)H}]
(12), and the regioisomeric η4-vinylketene complexes (η5-MeC5H4)(CO)Mn[η4-{R12PC(R)CHC(R′)CO}]
(13) and (η5-MeC5H4)(CO)Mn[η4-{R12PC(R′)CHC(R)CO}]
(13′). The solid-state structure of (η5-MeC5H4)(CO)2Mn[η2-{Ph2PC(Ph)CC(Tol)H}]
(12b) and (η5-MeC5H4)(CO)Mn[η4-{Cy2PC(Ph)CHC(Ph)CO}]
(13d) are reported. Finally, a mechanism that may account for the formation of the species 12, 13 and 13′ is proposed.