TY - JOUR
T1 - Multi-channel ceramic catalytic membrane microreactors for highly efficient heterogeneous catalysis
AU - Guo, Zhihao
AU - Du, Yan
AU - Zhang, Jiuxuan
AU - Tang, Zhenchen
AU - Jiang, Hong
AU - Chen, Rizhi
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2024/4/5
Y1 - 2024/4/5
N2 - Multi-channel ceramic catalytic membrane microreactors are highly efficient reactors, combining reaction and separation in a single unit. However, the synthesis of multi-channel ceramic catalytic membranes with well-distributed active components keeps a great challenge. Here, we report a flow-induced layer-by-layer assembly of zeolitic imidazolate framework-67 (ZIF-67) followed by pyrolysis that generates highly active and well-distributed Co@N-doped carbon (Co@CN) catalytic materials inside the ceramic membrane (CM) pores, which creates abundant microreactors with enhanced mass transfer efficiency. The pyrolysis temperature, concentration of Co2+, and number of solution cycles are determined as pivotal factors on the microstructures and catalytic performance of the catalytic membranes. The catalytic membrane, Co@CM-550-0.06-2, exhibits outstanding performance in the reduction of p-nitrophenol to p-aminophenol, achieving full conversion within 25 min and maintaining stability over 5 h of continuous operation. The developed multi-channel ceramic catalytic membrane microreactors can be readily scaled up, and have great application potentials in heterogeneous catalysis.
AB - Multi-channel ceramic catalytic membrane microreactors are highly efficient reactors, combining reaction and separation in a single unit. However, the synthesis of multi-channel ceramic catalytic membranes with well-distributed active components keeps a great challenge. Here, we report a flow-induced layer-by-layer assembly of zeolitic imidazolate framework-67 (ZIF-67) followed by pyrolysis that generates highly active and well-distributed Co@N-doped carbon (Co@CN) catalytic materials inside the ceramic membrane (CM) pores, which creates abundant microreactors with enhanced mass transfer efficiency. The pyrolysis temperature, concentration of Co2+, and number of solution cycles are determined as pivotal factors on the microstructures and catalytic performance of the catalytic membranes. The catalytic membrane, Co@CM-550-0.06-2, exhibits outstanding performance in the reduction of p-nitrophenol to p-aminophenol, achieving full conversion within 25 min and maintaining stability over 5 h of continuous operation. The developed multi-channel ceramic catalytic membrane microreactors can be readily scaled up, and have great application potentials in heterogeneous catalysis.
KW - Catalytic membrane microreactor
KW - Co nanoparticles
KW - N-doped carbon
KW - ZIF-67
KW - p-Nitrophenol hydrogenation
UR - http://www.scopus.com/inward/record.url?scp=85182030537&partnerID=8YFLogxK
U2 - 10.1016/j.ces.2024.119710
DO - 10.1016/j.ces.2024.119710
M3 - 文章
AN - SCOPUS:85182030537
SN - 0009-2509
VL - 287
JO - Chemical Engineering Science
JF - Chemical Engineering Science
M1 - 119710
ER -