通过自组装法制备了一系列具有水下超疏油性质的海藻酸钠/聚乙烯醇/尼龙(SA/PVA/尼龙)复合膜。通过改变交联剂钙离子含量,可以调控复合膜的孔径和表面润湿性。采用傅里叶变换红外光谱仪、扫描电子显微镜、接触角测量仪对复合膜的化学结构、表面形貌和润湿性进行表征,并测量复合膜对油水混合物的分离效率及分离通量。结果表明,随着钙离子含量的增加,交联程度提高使得复合膜材料表面粗糙度提高,同时在空气中亲水性增强,其中钙离子质量分数为5%时,复合膜水下超疏油性能达到最佳。稳定性实验表明,用质量分数5%钙离子交联的复合膜在强酸、强碱和饱和盐溶液中处理10d后,复合膜的润湿性没有明显变化,具有较好的化学稳定性。
A series of sodium alginate/polyvinyl alcohol/nylon (SA/PVA/nylon) composite membranes were prepared by self-assembly method.The pore size and surface wettability of the composite membrane can be controlled by changing the concentration of Ca2+.The chemical structure,surface morphology and wettability of the membrane were characterized by FT-IR,SEM and contact angle.The separation efficiency and flux of the membrane were measured.The results shown that with the increase of mass fraction of Ca2+,the surface roughness of the membrane increased,and enhanced the hydrophilicity in air.When the mass fraction of Ca2+ was 5%,the performance of underwater superoleophobicity of the membrane was the best.The stability experiment showed that the membrane crosslinked by mass fraction of 5% Ca2+ had good chemical stability,and had no obvious change in wettability after being treated in strong acid,or alkali,saturated salt solutions for 10 days.
[1] Ran H.Pollution control and remediation of rural water resource based on urbanization perspective[J].Environmental Technology & Innovation,2020,20:101136.
[2] 董文瑞,喻媛,杨悦悦,等.超疏水膜在油水分离中应用的研究进展[J].化工新型材料,2019,47(S1):16-19.
[3] Ahmed E M.Hydrogel:preparation,characterization,and applications:a review[J].Journal of Advanced Research,2015,6(2):105-121.
[4] McCloskey B D,Ju H,Freeman B D.Composite membranes based on a selective chitosan-poly(ethylene glycol) hybrid layer:synthesis,characterization,and performance in oil-water purification[J].Industrial & Engineering Chemistry Research,2010,49(1):366-373.
[5] Pawar S N,Edgar K J.Alginate derivatization:a review of chemistry,properties and applications[J].Biomaterials,2012,33(11):3279-3305.
[6] Nazir A,Schroen K,Boom R.Premix emulsification:a review[J].Journal of Membrane Science,2010,362(1/2):1-11.
[7] You H,Jin Y Z,Chen J C,et al.Direct coating of a DKGM hydrogel on glass fabric for multifunctional oil-water separation in harsh environments[J].Chemical Engineering Journal,2018,334:2273-2282.
[8] Hou D,Ding C,Li K,et al.A novel dual-layer composite membrane with underwater-superoleophobic/hydrophobic asymmetric wettability for robust oil-fouling resistance in membrane distillation desalination[J].Desalination,2018,428:240-249.
[9] Teng C,Xie D,Wang J F,et al.A strong,underwater superoleophobic PNIPAM clay nanocomposite hydrogel[J].Journal of Materials Chemistry A,2016,4(33):12884-12888.
[10] Chen C L,Weng D,Mahmood A,et al.Separation mechanism and construction of surfaces with special wettability for oil/water separation[J].ACS Applied Materials & Interfaces,2019,11(11):11006-11027.
[11] Yang H C,Liao K J,Huang H,et al.Mussel-inspired modification of a polymer membrane for ultra-high water permeability and oil-in-water emulsion separation[J].Journal of Materials Chemistry A,2014,2(26):10225-10230.
[12] Li J,Zhao Z H,Shen Y Q,et al.Fabrication of attapulgite coated membranes for effective separation of oil-in-water emulsion in highly acidic,alkaline,and concentrated salty environments[J].Advanced Materials Interfaces,2017,4(16):1700364.
[13] Cai Z J,Zhu C,Xiong P,et al.Calcium alginate-coated electrospun polyhydroxybutyrate/carbon nanotubes composite nanofiners as nanofiltration membrane for dye removal[J].Journal of Materials Science,2018,53(20):14801-14820.
[14] Li Y Q,Zhang H,Fan M Z,et al.A robust salt-tolerant superoleophobic alginate/graphene oxide aerogel for efficient oil/water separation in marine environments[J].Scientific Reports,2017,7:46379.
[15] Ayyavoo J,Kim I C,Kwon Y N.Preparation of EVOH and aramid-modified polar nylon membrane for the removal of hard and soft colloidal particles[J].Journal of Industrial and Engineering Chemistry,2018,65:72-81.
[16] Zhang X,Gao M,Tong L,et al.Polypyrrole/nylon membrane composite film for ultra-flexible all-solid supercapacitor[J].Journal of Materiomics,2020,6(2):339-347.
[17] Zia K M,Zia F,Zuber M,et al.Alginate based polyurethanes:a review of recent advances and perspective[J].International Journal of Biological Macromolecules,2015,79:377-387.
[18] Wu G,Jin K,Liu L,et al.A rapid self-healing hydrogel based on PVA and sodium alginate with conductive and cold-resistant properties[J].Soft Matter,2020,16(13):3319-3324.
[19] Hon K,Zeng Y C,Zhou C L,et al.Durable underwater superoleophobic PDDA/halloysite nanotubes decorated stainless steel mesh for efficient oil-water separation[J].Applied Surface Science,2017,416:344-352.
[20] 余芳,胡晓婧,唐其金,等.具有可逆润湿性氧化铋涂层在抗菌和油水分离中的应用[J].材料工程,2021,49(9):167-174.
[21] Su M J,Liu Y,Li S H,et al.A rubber-like,underwater superoleophobic hydrogel for efficient oil/water separation[J].Chemical Engineering Journal,2019,361:364-372.
[22] Pi J K,Yang J,Xu Z K.One-pot mussel-inspiration and silication:a platform for constructing oil-repellent surfaces toward crude oil/water separation[J].Journal of Membrane Science,2020,601:117915.
[23] Yang Y,Chen X,Li Y,et al.Construction of a superhydrophobic sodium alginate aerogel for efficient oil absorption and emulsion separation[J].Langmuir,2021,37(2):882-893.
[24] Zhang J,Fang W,Zhang F,et al.Ultrathin microporous membrane with high oil intrusion pressure for effective oil/water separation[J].Journal of Membrane Science,2020,608:118201.
[25] Fan J B,Song Y Y,Wang S T,et al.Directly coating hydrogel on filter paper for effective oil-water separation in highly acidic,alkaline,and salty environment[J].Advanced Functional Materials,2015,25(33):5368-5375.
[26] 马晓敏,邓南平,范兰兰,等.耐酸碱、耐高温的疏水亲油型油水分离材料的制备及表征[J].化工新型材料,2017,45(11):41-44.
[27] Huang L,Zhang L,Song J,et al.Superhy drophobic nickel-electroplated carbon fibers for versatile oil/water separation with excellent reusability and high environmental stability[J].ACS Applied Materials & Interfaces,2020,12(21):24390-24402.
基金资助
武汉工程大学研究生教育创新基金(CX2019203)