TY - JOUR
T1 - Irregular dot array nanocomposite molecularly imprinted membranes with enhanced antibacterial property
T2 - Synergistic promotion of selectivity, rebinding capacity and flux
AU - Lu, Jian
AU - Qin, Yingying
AU - Li, Chunxiang
AU - Wu, Yilin
AU - Meng, Minjia
AU - Dong, Zeqing
AU - Sun, Chang
AU - Chen, Muning
AU - Yan, Yongsheng
N1 - Publisher Copyright:
© 2020 Elsevier B.V.
PY - 2021/2/1
Y1 - 2021/2/1
N2 - Molecularly imprinted membranes capable of selective separation simultaneously desire superior selectivity, rebinding capacity and flux, where multi-microporous substrates and closely arranged molecularly imprinted polymers are demanded. The combination of hierarchical-microporous membranes and molecularly imprinted polymers with irregular dot array distribution provides a potential superiority. In present work, irregular dot array nanocomposite bisphenol A (BPA)-molecularly imprinted membranes (BPA-MIMs) with synergistically promotional performance were developed by a modification-by-imprinting strategy: (i) Hydrophilic and antibacterial modifications were implemented on hierarchical-microporous substrate membranes to improve the specific functionalities. (ii) BPA-imprinted polymers with irregular dot array structures were synthesized by “mercapto-alkenes click chemistry”. Based on specific design and optimization, selectivity, rebinding capacity and flux were synergistically enhanced onto the as-developed BPA-MIMs. The impressive permselectivity coefficients (βBIP/BPA = 2.78, βHQ/BPA = 7.57) with acceptable fluctuation (7.85% for βBIP/BPA and 9.49% for βHQ/BPA) demonstrate the superior selectivity and stability of BPA-MIMs. Importantly, the concentration-dependent and time-dependent cumulative selectivity verifies the leading contribution of the irregular dot array nanocomposite structure. Remarkable performance in semi-practical operations suggests the effectiveness of BPA-MIMs even in complex environment. The BPA-MIMs, as well as the methodology, developed in this work will provide significant potentials for membrane-based water treatment and even specific separation.
AB - Molecularly imprinted membranes capable of selective separation simultaneously desire superior selectivity, rebinding capacity and flux, where multi-microporous substrates and closely arranged molecularly imprinted polymers are demanded. The combination of hierarchical-microporous membranes and molecularly imprinted polymers with irregular dot array distribution provides a potential superiority. In present work, irregular dot array nanocomposite bisphenol A (BPA)-molecularly imprinted membranes (BPA-MIMs) with synergistically promotional performance were developed by a modification-by-imprinting strategy: (i) Hydrophilic and antibacterial modifications were implemented on hierarchical-microporous substrate membranes to improve the specific functionalities. (ii) BPA-imprinted polymers with irregular dot array structures were synthesized by “mercapto-alkenes click chemistry”. Based on specific design and optimization, selectivity, rebinding capacity and flux were synergistically enhanced onto the as-developed BPA-MIMs. The impressive permselectivity coefficients (βBIP/BPA = 2.78, βHQ/BPA = 7.57) with acceptable fluctuation (7.85% for βBIP/BPA and 9.49% for βHQ/BPA) demonstrate the superior selectivity and stability of BPA-MIMs. Importantly, the concentration-dependent and time-dependent cumulative selectivity verifies the leading contribution of the irregular dot array nanocomposite structure. Remarkable performance in semi-practical operations suggests the effectiveness of BPA-MIMs even in complex environment. The BPA-MIMs, as well as the methodology, developed in this work will provide significant potentials for membrane-based water treatment and even specific separation.
KW - Bisphenol A
KW - Irregular dot array structure
KW - Molecularly imprinted membrane
KW - Selective separation
KW - Synergistic Promotion
UR - http://www.scopus.com/inward/record.url?scp=85089820877&partnerID=8YFLogxK
U2 - 10.1016/j.cej.2020.126716
DO - 10.1016/j.cej.2020.126716
M3 - 文章
AN - SCOPUS:85089820877
SN - 1385-8947
VL - 405
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 126716
ER -