TY - JOUR
T1 - Highly efficient conversion of CO2 at atmospheric pressure to cyclic carbonates with in situ-generated homogeneous catalysts from a copper-containing coordination polymer
AU - Zou, Bo
AU - Hao, Liang
AU - Fan, Lin Yuan
AU - Gao, Zhi Ming
AU - Chen, Shi Lu
AU - Li, Hui
AU - Hu, Chang Wen
N1 - Publisher Copyright:
© 2015 Elsevier Inc. All rights reserved.
PY - 2015
Y1 - 2015
N2 - A copper-containing coordination polymer ((CuL)n, L = (Z)-2-(5-chlorin-2-hydroxy benzylideneamino) acetic acid, namely BIT-C), was facilely synthesized and structurally analyzed by single-crystal X-ray diffraction. BIT-C has an outstanding catalytic activity for the conversion of atmospheric pressure CO2 and various epoxides to cyclic carbonates. Several quaternary ammonium halides, ionic liquids, and organic bases were illustrated to be effective co-catalysts. Using BIT-C, Bu4NBr, and phenyl glycidyl ether, direct capture and conversion of CO2 from the air was shown to be feasible at the room temperature, with 19% yield of phenoxy propylene carbonate. During reaction, multistage dissociation of BIT-C was detected. The binuclear Cu fragment ((CuL)2) was demonstrated to be essential active species in catalysis and unable to be generated from the raw materials of BIT-C but currently only from the multistage dissociation of BIT-C. Kinetic analysis and DFT calculations suggest a reaction mechanism where a copper center activates epoxides and CO2 successively.
AB - A copper-containing coordination polymer ((CuL)n, L = (Z)-2-(5-chlorin-2-hydroxy benzylideneamino) acetic acid, namely BIT-C), was facilely synthesized and structurally analyzed by single-crystal X-ray diffraction. BIT-C has an outstanding catalytic activity for the conversion of atmospheric pressure CO2 and various epoxides to cyclic carbonates. Several quaternary ammonium halides, ionic liquids, and organic bases were illustrated to be effective co-catalysts. Using BIT-C, Bu4NBr, and phenyl glycidyl ether, direct capture and conversion of CO2 from the air was shown to be feasible at the room temperature, with 19% yield of phenoxy propylene carbonate. During reaction, multistage dissociation of BIT-C was detected. The binuclear Cu fragment ((CuL)2) was demonstrated to be essential active species in catalysis and unable to be generated from the raw materials of BIT-C but currently only from the multistage dissociation of BIT-C. Kinetic analysis and DFT calculations suggest a reaction mechanism where a copper center activates epoxides and CO2 successively.
KW - Atmospheric pressure
KW - CO conversion
KW - DFT calculation
KW - In situ-generated homogeneous catalyst
KW - Multistage dissociation
UR - http://www.scopus.com/inward/record.url?scp=84930629138&partnerID=8YFLogxK
U2 - 10.1016/j.jcat.2015.05.002
DO - 10.1016/j.jcat.2015.05.002
M3 - Article
AN - SCOPUS:84930629138
SN - 0021-9517
VL - 329
SP - 119
EP - 129
JO - Journal of Catalysis
JF - Journal of Catalysis
ER -