TY - JOUR
T1 - Bioinspired synthesis of multiple-functional nanocomposite platform showing optically and thermally responsive affinity
T2 - Application to environmentally responsive separation membrane
AU - Wu, Yilin
AU - Chen, Li
AU - Hao, Tongfan
AU - Lu, Jian
AU - Gao, Jia
AU - Lin, Xinyu
AU - Cui, Jiuyun
AU - Li, Chunxiang
AU - Yan, Yongsheng
N1 - Publisher Copyright:
© 2018 Elsevier Inc.
PY - 2018/12/1
Y1 - 2018/12/1
N2 - A tremendous effort has been made for the synthesis and multifunction of environmentally responsive and selective separation membranes. With the bioinspired design of polydopamine (pDA)-assisted inorganic film, we proposed a simple, yet efficient, thermo-responsive cell culture substrate. Herein, a Ag/TiO2/pDA-based nanocomposite structure was initially obtained, and the ciprofloxacin-imprinted membranes (MINCMs) with thermo-responsive recognition sites were then synthesized by using NIPAm as backbone monomer. The opto-thermally responsive molecularly imprinted membranes (OT-MIMs) were obtained through in situ reduction of HAuCl4 on membrane surfaces, Au nanoparticles were used as the light-heat converters. The light-switching principle was elaborated as well as the energy conversions that took place in this system. These conformational changes finally allowed the constructions or destructions of ciprofloxacin-imprinted sites. Due to the formation of the opto-thermally responsive ciprofloxacin-imprinted sites, rapid adsorption dynamics and opto-thermally responsive perm-selectivity toward templates were both achieved. Therefore, 58.65 mg/g of adsorption capacity and 4.91 of permselectivity factor from OT-MIMs were successfully obtained. Importantly, the as-designed bioinspired strategy led to a state-of-the-art design that was capable of reversibly controlling the flow rate (J) of ciprofloxacin from 12.10 to 4.93 mg min−1 cm−2 in less than a few minutes using light.
AB - A tremendous effort has been made for the synthesis and multifunction of environmentally responsive and selective separation membranes. With the bioinspired design of polydopamine (pDA)-assisted inorganic film, we proposed a simple, yet efficient, thermo-responsive cell culture substrate. Herein, a Ag/TiO2/pDA-based nanocomposite structure was initially obtained, and the ciprofloxacin-imprinted membranes (MINCMs) with thermo-responsive recognition sites were then synthesized by using NIPAm as backbone monomer. The opto-thermally responsive molecularly imprinted membranes (OT-MIMs) were obtained through in situ reduction of HAuCl4 on membrane surfaces, Au nanoparticles were used as the light-heat converters. The light-switching principle was elaborated as well as the energy conversions that took place in this system. These conformational changes finally allowed the constructions or destructions of ciprofloxacin-imprinted sites. Due to the formation of the opto-thermally responsive ciprofloxacin-imprinted sites, rapid adsorption dynamics and opto-thermally responsive perm-selectivity toward templates were both achieved. Therefore, 58.65 mg/g of adsorption capacity and 4.91 of permselectivity factor from OT-MIMs were successfully obtained. Importantly, the as-designed bioinspired strategy led to a state-of-the-art design that was capable of reversibly controlling the flow rate (J) of ciprofloxacin from 12.10 to 4.93 mg min−1 cm−2 in less than a few minutes using light.
KW - Ciprofloxacin
KW - Molecularly imprinted nanocomposite membranes
KW - optoOpto-thermally responsive separation
KW - pDA-assisted inorganic film formation
UR - http://www.scopus.com/inward/record.url?scp=85049728877&partnerID=8YFLogxK
U2 - 10.1016/j.jcis.2018.07.033
DO - 10.1016/j.jcis.2018.07.033
M3 - 文章
C2 - 30015165
AN - SCOPUS:85049728877
SN - 0021-9797
VL - 531
SP - 1
EP - 10
JO - Journal of Colloid and Interface Science
JF - Journal of Colloid and Interface Science
ER -