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Effect of oxidation degree of GO nanosheets on microstructure and performance of polysulfone-GO mixed matrix membranes

机译:Go nanoshe氧化程度对多砜 - 液混合基质膜微观结构和性能的影响

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Graphene oxide with increasing degree of oxidation (GO-x) were incorporated in polysulfone (PSF) mixed-matrix ultrafiltration membranes. Synthesized GO-x were characterized for average particle size by AFM and DLS method; oxygen functionalities and nanostructure properties by XPS, FT-IR, XRD, Raman analysis, TEM, and elemental analysis; surface charge by zeta potential. Increasing oxidation degree, increased the proportion of carbonyl functional groups, exfoliation, lowered zeta potential and particle size in GO. GO-x with higher oxidation degree showed significantly improved dispersibility in N-methyl-2-pyrrolidone and polysulfone matrix. Blending hydrophilic GO-x, enhanced phase-separation kinetics improving porosity, tensile strength, permeability, protein rejection, and fouling resistance of membranes. With the increase in the oxidation degree of the matrix, contact angle and surface charge on the membranes decreased. 2%-GO-7/P membrane showed permeate flux of 352 kg m(-2) h(-1) bar(-1) while, 1%-GO-7/P membranes acquired permanent negative charge and displayed permeability of 250 kg m(-2) h(-1) bar(-1) with BSA rejection of about 97%, compared to control membrane permeability of 102 kg m(-2) h(-1) bar(-1) with BSA rejection of about 91%. Thus, the membrane flux-rejection trade-off is overcome. 1%-GO-7/P membrane displayed exceptional flux recovery of over 99% on simple DI water flushing. The superior performance of GO-x/P membranes is attributed to faster diffusion rate of water across GO matrix over that through the polymer solution, which increased the number of thermodynamic instabilities giving higher rate of phase inversion resulting in narrow pore size distribution and higher pore density, demonstrating simple approach for enhancing performance of UF membranes.
机译:将氧化氧化物(GO-X)增加(GO-X)掺入聚砜(PSF)混合基质超滤膜中。合成的GO-X表征AFM和DLS方法的平均粒度; XPS,FT-IR,XRD,拉曼分析,TEM和元素分析的氧函数和纳米结构性能; Zeta电位表面充电。增加氧化程度,增加羰基官能团的比例,去角质,降低Zeta电位和粒度。具有较高氧化度的Go-X显示在N-甲基-2-吡咯烷酮和聚砜基质中显着提高了分散性。混合亲水性Go-X,增强的相分离动力学提高了孔隙率,拉伸强度,渗透性,蛋白排斥和膜的污垢抗性。随着基质的氧化程度的增加,膜上的接触角和表面电荷降低。 2%-Go-7 / P膜显示出352 kg m(-2)H(-1)杆(-1)的渗透通量,而1%-go-7 / p膜获得永久性负电荷和显示的渗透率为250 Kg M(-2)H(-1)H(-1)棒(-1)BSA抑制约97%,与BSA排斥反应的102kg m(-2)H(-1)杆(-1)的控制膜渗透率相比约91%。因此,克服了膜通量排斥权。 1%-GO-7 / P膜在简单的DI水冲洗时显示出优异的助焊剂超过99%。 Go-X / P膜的卓越性能归因于通过聚合物溶液对去基质的速度较快的水扩散速率,这增加了热力学不稳定性的次数,从而导致狭窄的孔径分布和更高的孔密度,展示了提高UF膜性能的简单方法。

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