Electrocatalytic Hydrogenation of 5‐Hydroxymethylfurfural in the Absence and Presence of Glucose

Электрокаталитическое гидрирование 5-гидроксиметилфурфурола в отсутствие и присутствии глюкозы
Youngkook Kwon, Ed de Jong, Saeed Raoufmoghaddam, Marc T. M. Koper
2013-07-15

2,5-dihydroxymethylfuran (DHMF)5-hydroxymethylfurfural (HMF)HMF hydrogenolysiselectrocatalytic HMF hydrogenationon-line HPLC product analysis
Electrocatalytic hydrogenation of 5-hydroxymethylfurfural (HMF) to 2,5-dihydroxymethylfuran (DHMF) or other species, such as 2,5-dimethylfuran, on solid metal electrodes in neutral media is addressed, both in the absence and in the presence of glucose. The reaction is studied by combining voltammetry with on-line product analysis by using HPLC, which provides both qualitative and quantitative information about the reaction products as a function of electrode potential. Three groups of catalysts show different selectivity towards: (1) DHMF (Fe, Ni, Ag, Zn, Cd, and In), (2) DHMF and other products (Pd, Al, Bi, and Pb), depending on the applied potential, and (3) other products (Co, Au, Cu, Sn, and Sb) through HMF hydrogenolysis. The rate of electrocatalytic HMF hydrogenation is not strongly catalyst-dependent because all catalysts show similar onset potentials (-0.5 ± 0.2 V) in the presence of HMF. However, the intrinsic properties of the catalysts determine the reaction pathway towards DHMF or other products. Ag showed the highest activity towards DHMF formation (up to 13.1 mM cm(-2) with high selectivity> 85%). HMF hydrogenation is faster than glucose hydrogenation on all metals. For transition metals, the presence of glucose enhances the formation of DHMF and suppresses the hydrogenolysis of HMF. On poor metals such as Zn, Cd, and In, glucose enhances DHMF formation; however, its contribution in the presence of Bi, Pb, Sn, and Sb is limited. Remarkably, in the presence of HMF, glucose hydrogenation itself is largely suppressed or even absent. The first electron-transfer step during HMF reduction is not metal-dependent, suggesting a non-catalytic reaction with proton transfer directly from water in the electrolyte.
1
Ag shows the highest DHMF activity, producing up to 13.1 mM cm−2 with selectivity above 85%.
2
Catalysts exhibit three selectivity groups: preferential DHMF formation; potential-dependent mixtures of DHMF and other products; or hydrogenolysis yielding other products.
3
Glucose generally enhances DHMF formation and suppresses HMF hydrogenolysis, while HMF strongly suppresses or eliminates glucose hydrogenation; the initial electron-transfer step is metal-independent and involves proton transfer from water.
4
HMF hydrogenation has similar onset potentials across catalysts (-0.5 ± 0.2 V), while catalyst properties determine the reaction pathway and product selectivity.
5
The study evaluates electrocatalytic HMF hydrogenation to DHMF and other products on solid metal electrodes in neutral media, with and without glucose.

Electrocatalytic hydrogenation of 5-hydroxymethylfurfural (HMF) on solid metal electrodes in neutral media, in the absence and presence of glucose

Catalyst-dependent reaction pathways, product selectivity, activity, and effects of glucose during HMF electrohydrogenation

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2013-07-15
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Youngkook Kwon
Ed de Jong
Saeed Raoufmoghaddam
Marc T. M. Koper
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