The high chemical stability of aliphatic carboxylic acid makes catalytic decarboxylation at low temperatures challenging. We show that arylaliphatic acids (Ar-C n H 2 n -COOH, n ≥ 1) decarboxylate on carbon-supported Pd nanoparticles (Pd/C) at 90 °C with 100% selectivity. In situ XANES during decarboxylation of preadsorbed substrates indicates that the active phase is α-phase palladium hydride (α-PdH x ). The reaction rate is enhanced by one order of magnitude when hydrogen is preadsorbed. Tracing deuterium labeling positions, it is concluded that carboxylic acid (Ar-C n H 2 n -COOH) undergoes an α-C–H bond dissociation on the Pd surface to the Ar-(CH 2 ) n −1 -CH*-COO* intermediate in the first step, followed by the C–COO scission, and finally, Ar-(CH 2 ) n −1 -CH* reacts with two sorbed H to produce Ar-(CH 2 ) n −1 -CH 3 . The high rates are related to the concentration of hydride present on the catalyst particles to complete the catalytic cycle in a Mars–van Krevelen-type mechanism and the rate of H/D exchange at the α-C–H position.
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Deng et al. (2021) studied this question.
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