TY - JOUR
T1 - Mixed matrix membranes for rubidium-dependent recognition and separation
T2 - A synergistic recombination design based on electrostatic interactions
AU - Yu, Chao
AU - Lu, Jian
AU - Hou, Zhiqiang
AU - Ma, Zhongfei
AU - Lin, Xinyu
AU - Dong, Zeqing
AU - Xing, Wendong
AU - Yan, Yongsheng
AU - Wu, Yilin
N1 - Publisher Copyright:
© 2020 Elsevier B.V.
PY - 2021/1/15
Y1 - 2021/1/15
N2 - Exposure and distribution of recognition sites are critical for membrane separation materials to enhance adsorption and separation efficiency toward rubidium ion. Herein, we prepared the rubidium (Rb) ion separation membranes (Rb-ISMs) through a delayed phase inversion method taking advantage of the different polarities between ethanol and water. Fabrication process was conducted through immersion of a poly (vinylidene fluoride)/graphene oxide (PVDF/GO) casting solution into coagulating bath containing 18-crown-6 (18C6) grafted mesoporous silica, ethanol and water. After phase inversion process, the as-prepared adsorbent materials were immobilized on membrane surface by strong electrostatic interaction force. The method could effectively avoid the embedding and aggregation recognition sites, and the coagulating bath only required the ethanol and water that was relatively healthy and environmental. The Rb-ISMs prepared at optimal conditions showed enhanced rebinding capacity (49.344 mg g−1) towards Rb±, with a superior rebinding selectivity (11.8, 6.82, 9.08 for Rb±/Ca2+, Rb±/Cs±, Rb±/Mg2+, respectively). Importantly, Rb-ISMs showed remarkable perm-selectivity and regeneration performance, which further demonstrated its potentials in the rapid and effective separation field of Rb ions.
AB - Exposure and distribution of recognition sites are critical for membrane separation materials to enhance adsorption and separation efficiency toward rubidium ion. Herein, we prepared the rubidium (Rb) ion separation membranes (Rb-ISMs) through a delayed phase inversion method taking advantage of the different polarities between ethanol and water. Fabrication process was conducted through immersion of a poly (vinylidene fluoride)/graphene oxide (PVDF/GO) casting solution into coagulating bath containing 18-crown-6 (18C6) grafted mesoporous silica, ethanol and water. After phase inversion process, the as-prepared adsorbent materials were immobilized on membrane surface by strong electrostatic interaction force. The method could effectively avoid the embedding and aggregation recognition sites, and the coagulating bath only required the ethanol and water that was relatively healthy and environmental. The Rb-ISMs prepared at optimal conditions showed enhanced rebinding capacity (49.344 mg g−1) towards Rb±, with a superior rebinding selectivity (11.8, 6.82, 9.08 for Rb±/Ca2+, Rb±/Cs±, Rb±/Mg2+, respectively). Importantly, Rb-ISMs showed remarkable perm-selectivity and regeneration performance, which further demonstrated its potentials in the rapid and effective separation field of Rb ions.
KW - Delayed phase inversion method
KW - Electrostatic interaction force
KW - Rebinding selectivity
KW - Regeneration performance
KW - Rubidium ion
KW - Separation membrane
UR - http://www.scopus.com/inward/record.url?scp=85090942112&partnerID=8YFLogxK
U2 - 10.1016/j.seppur.2020.117727
DO - 10.1016/j.seppur.2020.117727
M3 - 文章
AN - SCOPUS:85090942112
SN - 1383-5866
VL - 255
JO - Separation and Purification Technology
JF - Separation and Purification Technology
M1 - 117727
ER -