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Dehydrogenation of formic acid using iridium-NSi species as catalyst precursors†

Dalton Transactions, ISSN: 1477-9234, Vol: 51, Issue: 11, Page: 4386-4393
2022
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Article Description

Using a low loading of the iridium(iii) complexes [Ir(CFSO)(κ-NSi)] (1) (NSi = (4-methylpyridin-2-yloxy)diisopropylsilyl) and [{Ir(κ-NSi)}(μ-CFSO)] (2) (NSi = (4-methylpyridin-2-yloxy)dimethylsilyl) in the presence of EtN, it has been possible to achieve the solventless selective dehydrogenation of formic acid. The best catalytic performance (TOF ≈ 2900 h) has been achieved with 2 (0.1 mol%) and EtN (40 mol% to FA) at 373 K. Kinetic studies at variable temperatures show that the activation energy of the 2-catalyzed process at 353 K is 22.8 ± 0.8 kcal mol. KIE values of 1.33, 2.86, and 3.33 were obtained for the 2-catalyzed dehydrogenation of HCOOD, DCOOH, and DCOOD, respectively, in the presence of 10 mol% of EtN at 353 K. These data show that the activation of the C-H bond of FA is the rate-determining step of the process. A DFT mechanistic study for the catalytic cycle involving hydride abstraction from the formate anion by the metal, assisted by a molecule of formic acid, and heterolytic H formation has been performed. Moreover, the presence of Ir-formate intermediates was identified by means of NMR studies of the catalytic reactions in thf-d at 323 K. In all the cases, the decomposition of the catalyst to give unactive crystalline iridium NPs was observed.

Bibliographic Details

Guzmán, Jefferson; Urriolabeitia, Asier; Polo, Víctor; Fernández-Buenestado, Marta; Iglesias, Manuel; Fernández-Alvarez, Francisco J

Royal Society of Chemistry (RSC)

Chemistry

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