Biomass Oxidation: Formyl C-H Bond Activation by the Surface Lattice Oxygen of Regenerative CuO Nanoleaves

Amaniampong, PN; Trinh, QT; Wang, B; Borgna, A; Yang, Y; Mushrif, SH

HERO ID

4947474

Reference Type

Journal Article

Year

2015

Language

English

PMID

26119659

HERO ID 4947474
In Press No
Year 2015
Title Biomass Oxidation: Formyl C-H Bond Activation by the Surface Lattice Oxygen of Regenerative CuO Nanoleaves
Authors Amaniampong, PN; Trinh, QT; Wang, B; Borgna, A; Yang, Y; Mushrif, SH
Journal Angewandte Chemie (International Edition)
Volume 54
Issue 31
Page Numbers 8928-8933
Abstract An integrated experimental and computational investigation reveals that surface lattice oxygen of copper oxide (CuO) nanoleaves activates the formyl C-H bond in glucose and incorporates itself into the glucose molecule to oxidize it to gluconic acid. The reduced CuO catalyst regains its structure, morphology, and activity upon reoxidation. The activity of lattice oxygen is shown to be superior to that of the chemisorbed oxygen on the metal surface and the hydrogen abstraction ability of the catalyst is correlated with the adsorption energy. Based on the present investigation, it is suggested that surface lattice oxygen is critical for the oxidation of glucose to gluconic acid, without further breaking down the glucose molecule into smaller fragments, because of C-C cleavage. Using CuO nanoleaves as catalyst, an excellent yield of gluconic acid is also obtained for the direct oxidation of cellobiose and polymeric cellulose, as biomass substrates.
Doi 10.1002/anie.201503916
Pmid 26119659
Wosid WOS:000358501500005
Is Certified Translation No
Dupe Override No
Is Public Yes
Language Text English
Keyword Glucose; Oxidation; Oxygen; 2015)
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