| Literature DB >> 30737874 |
Yitao Dai1,2, Pengju Ren1, Yaru Li1, Dongdong Lv3, Yanbin Shen1, Yongwang Li1,4, Hans Niemantsverdriet1,3, Flemming Besenbacher2, Hongwei Xiang1,4, Weichang Hao5, Nina Lock2, Xiaodong Wen1,4, James P Lewis4,6, Ren Su1.
Abstract
The selective oxidation of primary alcohols to aldehydes by O2 instead of stoichiometric oxidants (for example, MnVII , CrVI , and OsIV ) is an important but challenging process. Most heterogeneous catalytic systems (thermal and photocatalysis) require noble metals or harsh reaction conditions. Here we show that the Bi24 O31 Br10 (OH)δ photocatalyst is very efficient in the selective oxidation of a series of aliphatic (carbon chain from C1 to C10 ) and aromatic alcohols to their corresponding aldehydes/ketones under visible-light irradiation in air at room temperature, which would be challenging for conventional thermal and light-driven processes. High quantum efficiencies (71 % and 55 % under 410 and 450 nm irradiation) are reached in a representative reaction, the oxidation of isopropanol. We propose that the outstanding performance of the Bi24 O31 Br10 (OH)δ photocatalyst is associated with basic surface sites and active lattice oxygen that boost the dehydrogenation step in the photo-oxidation of alcohols.Entities:
Keywords: active lattice oxygen; photo-oxidation; primary alcohols; solid base; visible-light photocatalysis
Year: 2019 PMID: 30737874 DOI: 10.1002/anie.201900773
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336