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Precise Control of the Oriented Layered Double Hydroxide Nanosheets Growth on Graphene Oxides Leading to Efficient Catalysts for Cascade Reactions
Author(s) -
Zhang Wei,
Wang Zelin,
Zhao Yufei,
Miras Haralampos N.,
Song YuFei
Publication year - 2019
Publication title -
chemcatchem
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.497
H-Index - 106
eISSN - 1867-3899
pISSN - 1867-3880
DOI - 10.1002/cctc.201901208
Subject(s) - catalysis , layered double hydroxides , selectivity , knoevenagel condensation , graphene , hydroxide , chemistry , bifunctional , ruthenium , adsorption , inorganic chemistry , oxide , chemical engineering , materials science , nanotechnology , organic chemistry , engineering
In recent years, great attention has been paid to cascade reactions, which can improve efficiency and reduce waste production by implementing several consecutive reactions. Herein, two bifunctional catalysts were successfully prepared by precise control of the oriented layered double hydroxides (LDHs) growth on graphene oxides (GO) using a single‐drop and co‐precipitation method, respectively. The resultant Ru/LDH‐GO‐P and Ru/LDH‐GO‐V composites were characterized by EXAFS, FT‐IR, XRD, TG‐DTA, BET, XPS, TEM, CO 2 ‐TPD, O 2 ‐TPD, etc. The catalytic performance of Ru/LDH‐GO‐P and Ru/LDH‐GO‐V for one‐pot oxidation‐Knoevenagel condensation reaction showed significant difference under the same experimental conditions, in which the Ru/LDH‐GO‐P showed 99 % conversion and 99 % selectivity, in marked contrast of 60.7 % conversion and 47.9 % selectivity using Ru/LDH‐GO‐V as catalyst. The large enhancement of the catalytic performance using Ru/LDH‐GO‐P can be attributed to the following reasons: 1) the Co 3+ centers in Ru/LDH‐GO‐P can promote the formation of surface oxygen vacancies that can adsorb and activate O 2 to get better performance; 2) the Ru/LDH‐GO‐P exhibited larger BET surface and more medium‐strong basic active sites than the Ru/LDH‐GO‐V. Moreover, the Ru/LDH‐GO‐P catalyst can be easily recovered from the reaction system and reused for at least five times without obvious deterioration of its catalytic activity or structural integrity.