TY - JOUR
T1 - Room-temperature in situ synthesis of MOF@MXene membrane for efficient hydrogen purification
AU - Li, Renhao
AU - Fu, Xufang
AU - Liu, Guozhen
AU - Li, Jiahui
AU - Zhou, Guangyuan
AU - Liu, Gongping
AU - Jin, Wanqin
N1 - Publisher Copyright:
© 2022
PY - 2022/12/15
Y1 - 2022/12/15
N2 - MXene-based membranes with well-defined nanochannels are promising for gas separation. However, manipulating the interlayer structure to obtain high permeance and selectivity remains a great challenge. Herein, we report the construction of MOF@MXene membrane with significantly enhanced gas permeance and selectivity using room-temperature in situ synthesized MOF-801@MXene nanosheets as building blocks. Specifically, negatively charged MXene nanosheets can anchor Zr-metal ions from the surrounding through electrostatic interaction, and then coordinate with ligands at room temperature, yielding MOF-801 crystals with a particle size of approximately 20 nm uniformly grown on the MXene nanosheets. The membranes were then fabricated by vacuum filtration of the as-synthesized MOF-801@MXene nanosheets on the surface of porous organic substrate. The physicochemical properties of the as-synthesized MOF-801@MXene nanosheets and corresponding membranes were observed by XPS, AFM, SEM, IR, XRD, and gas adsorption analysis. Because the MOF-801 crystals can provide more transport channels for H2 molecules and exhibit high adsorption capacity for CO2 molecules to impede its diffusion, the resulting membranes display excellent gas separation performance with a H2 permeance of 2200 GPU and H2/CO2 selectivity of 26.6. Such a facile preparation method for MOF@MXene membranes could provide valuable insights into the development of advanced materials for molecular separation.
AB - MXene-based membranes with well-defined nanochannels are promising for gas separation. However, manipulating the interlayer structure to obtain high permeance and selectivity remains a great challenge. Herein, we report the construction of MOF@MXene membrane with significantly enhanced gas permeance and selectivity using room-temperature in situ synthesized MOF-801@MXene nanosheets as building blocks. Specifically, negatively charged MXene nanosheets can anchor Zr-metal ions from the surrounding through electrostatic interaction, and then coordinate with ligands at room temperature, yielding MOF-801 crystals with a particle size of approximately 20 nm uniformly grown on the MXene nanosheets. The membranes were then fabricated by vacuum filtration of the as-synthesized MOF-801@MXene nanosheets on the surface of porous organic substrate. The physicochemical properties of the as-synthesized MOF-801@MXene nanosheets and corresponding membranes were observed by XPS, AFM, SEM, IR, XRD, and gas adsorption analysis. Because the MOF-801 crystals can provide more transport channels for H2 molecules and exhibit high adsorption capacity for CO2 molecules to impede its diffusion, the resulting membranes display excellent gas separation performance with a H2 permeance of 2200 GPU and H2/CO2 selectivity of 26.6. Such a facile preparation method for MOF@MXene membranes could provide valuable insights into the development of advanced materials for molecular separation.
UR - http://www.scopus.com/inward/record.url?scp=85140308877&partnerID=8YFLogxK
U2 - 10.1016/j.memsci.2022.121097
DO - 10.1016/j.memsci.2022.121097
M3 - 文章
AN - SCOPUS:85140308877
SN - 0376-7388
VL - 664
JO - Journal of Membrane Science
JF - Journal of Membrane Science
M1 - 121097
ER -