TY - JOUR
T1 - Post-synthetic anchoring Fe(III) into a fcu-type Zr-MOF for the catalyzed hydrolysis of 5-hydroxylmethoxyfurfural
AU - Zhang, Mengmeng
AU - Lou, Jiaying
AU - Xu, Rui
AU - Li, Peng
AU - Sha, Yunfei
AU - Zhang, Hui
AU - Jia, Yu
AU - Chen, Zhenxia
AU - Wu, Da
AU - Ling, Yun
AU - Zhou, Yaming
N1 - Publisher Copyright:
© 2021 Elsevier Inc.
PY - 2021/12
Y1 - 2021/12
N2 - Metal-organic frameworks (MOFs) featuring a fcu-type net based on 12-connected [Zr6(μ3-O)4(μ3-OH)4] cluster have received considerable interest for the fundamental investigation of structure-property relationships in a wide range of catalytic reactions. In this work, the bipyridine (bpy) chelate group was introduced into the fcu-type framework of UiO-67, giving UiO-67bpy as the catalyst support. Then, FeCl3 was post-synthetically anchored to the bpy group, resulting into the isolation of FeCl3/UiO-67bpy. Catalyzed hydrolysis of 5-hydroxylmethoxyfurfural (HMF) into levulinic acid (LA) was then explored and revealed that it can efficiently and selectively catalytic convert HMF into LA, which is superior to that of FeCl3/UiO-67 where FeCl3 is encapsulated in the cage of UiO-67 and dispersed on the pore surface. The recyclability studies further confirmed the importance of anchored FeCl3 where there is no significant decrease in catalytic activity as compared with that of FeCl3/UiO-67. Taking the detailed textural porosity and catalytic results of isomorphous structures in consideration, our studies revealed that narrowing the pore size with anchored FeCl3 on the skeleton of the fcu-type Zr-MOF rather than encapsulating FeCl3 inside the cage is more favored for the rehydration reaction of HMF to LA.
AB - Metal-organic frameworks (MOFs) featuring a fcu-type net based on 12-connected [Zr6(μ3-O)4(μ3-OH)4] cluster have received considerable interest for the fundamental investigation of structure-property relationships in a wide range of catalytic reactions. In this work, the bipyridine (bpy) chelate group was introduced into the fcu-type framework of UiO-67, giving UiO-67bpy as the catalyst support. Then, FeCl3 was post-synthetically anchored to the bpy group, resulting into the isolation of FeCl3/UiO-67bpy. Catalyzed hydrolysis of 5-hydroxylmethoxyfurfural (HMF) into levulinic acid (LA) was then explored and revealed that it can efficiently and selectively catalytic convert HMF into LA, which is superior to that of FeCl3/UiO-67 where FeCl3 is encapsulated in the cage of UiO-67 and dispersed on the pore surface. The recyclability studies further confirmed the importance of anchored FeCl3 where there is no significant decrease in catalytic activity as compared with that of FeCl3/UiO-67. Taking the detailed textural porosity and catalytic results of isomorphous structures in consideration, our studies revealed that narrowing the pore size with anchored FeCl3 on the skeleton of the fcu-type Zr-MOF rather than encapsulating FeCl3 inside the cage is more favored for the rehydration reaction of HMF to LA.
KW - 5-Hydroxylmethoxyfurfural
KW - Catalytic hydrolysis
KW - fcu topology
KW - Metal-organic framework
KW - Post-synthesis
UR - https://www.scopus.com/pages/publications/85115807846
U2 - 10.1016/j.micromeso.2021.111449
DO - 10.1016/j.micromeso.2021.111449
M3 - 文章
AN - SCOPUS:85115807846
SN - 1387-1811
VL - 328
JO - Microporous and Mesoporous Materials
JF - Microporous and Mesoporous Materials
M1 - 111449
ER -