The title complex reacted with [Fe(CO)] to give the trinuclear derivative [FeWCp(μ-H)(μ-PPh)(CO)(NO)] (W-W = 3.044(1) Å) as a result of full insertion of the 16-electron Fe(CO) fragment into the tricentric W-H-W bond of the parent substrate. In contrast, the reactions with the THF adducts [M(CO)(THF)] (M = W, Mo) and [MnCp'(CO)(THF)] (Cp' = CHMe) yielded the μ-hydride derivatives [MWCp(μ-H)(μ-PPh)(CO)(NO)] (W-W = 3.006(1) to 3.164(1) Å for the W compound) and [MnWCpCp'(μ-H)(μ-PPh)(CO)(NO)] respectively, all of them resulting from addition (rather than insertion) of the corresponding 16-electron fragment to the WH moiety of the parent compound. Density Functional Theory calculations revealed that edge- and face-bridged hydride clusters were of similar energy in the WFe system, while the face-bridged structure was significantly more stable (by more than ca. 40 kJ mol) for the W system. Both clusters displayed fast rearrangement in solution involving a flapping movement of the puckered PWM core of these molecules. This was combined, in the WFe cluster, with fast exchange between the almost isoenergetic edge- and face-bridged hydride isomers. The reactions of the title compound with several carbonyl dimers were also examined as an additional synthetic approach to the rational synthesis of heterometallic clusters, but were unsuccessful except in the case of [Co(CO)], which reacted at 253 K in the dark to give a mixture of the binuclear complex [CoWCp(μ-PPh)(CO)(NO)] (Co-W = 2.8623(6) Å) and the trinuclear cluster [CoWCp(μ-PPh)(CO)(NO)] (W-W = 3.1654(4) Å; W-Co = 2.638(1), 2.829(1) Å), the latter resulting from formal replacement of the hydride ligand with the 17-electron fragment Co(CO), which displayed an asymmetric binding to the W centre.

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http://dx.doi.org/10.1039/c7dt03580bDOI Listing

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