Ladewig Bradley P, Tan Ying Han, Lin Chun Xiang C, Ladewig Katharina, Diniz da Costa João C, Smart Simon
Department of Chemical Engineering, Faculty of Engineering, Monash University, VIC 3800, Australia.
ARC Centre for Excellence in Functional Nanomaterials, The University of Queensland, Building 75, Cooper Rd, Brisbane, QLD 4072, Australia.
Materials (Basel). 2011 May 2;4(5):845-856. doi: 10.3390/ma4040845.
In this work we investigate the potential of a polyethylene glycol-polypropylene glycol-polyethylene glycol, tri-block copolymer as a template for a hybrid carbon/silica membrane for use in the non-osmotic desalination of seawater. Silica samples were loaded with varying amounts of tri-block copolymer and calcined in a vacuum to carbonize the template and trap it within the silica matrix. The resultant xerogels were analyzed with FTIR, Thermogravimetric analysis (TGA) and N₂ sorption techniques, wherein it was determined that template loadings of 10 and 20% produced silica networks with enhanced pore volumes and appropriately sized pores for desalination. Membranes were created via two different routes and tested with feed concentrations of 3, 10 and 35 ppk of NaCl at room temperature employing a transmembrane pressure drop of 85% (in most cases >95%) and fluxes higher than 1.6 kg m h. Furthermore, the carbonized templated membranes displayed equal or improved performance compared to similarly prepared non-templated silica membranes, with the best results of a flux of 3.7 kg m h with 98.5% salt rejection capacity, exceeding previous literature reports. In addition, the templated silica membranes exhibited superior hydrostability demonstrating their potential for long-term operation.
在本研究中,我们探究了聚乙二醇-聚丙二醇-聚乙二醇三嵌段共聚物作为用于海水非渗透淡化的碳/二氧化硅混合膜模板的潜力。将不同量的三嵌段共聚物负载到二氧化硅样品中,并在真空中煅烧以碳化模板并将其捕获在二氧化硅基质中。用傅里叶变换红外光谱(FTIR)、热重分析(TGA)和N₂吸附技术对所得干凝胶进行分析,结果表明,10%和20%的模板负载量产生了具有增大的孔体积和适合脱盐尺寸孔的二氧化硅网络。通过两种不同途径制备膜,并在室温下用3、10和35 ppm的NaCl进料浓度进行测试,跨膜压降为85%(大多数情况下>95%),通量高于1.6 kg m⁻² h⁻¹。此外,与类似制备的无模板二氧化硅膜相比,碳化模板膜表现出相同或更好的性能,通量为3.7 kg m⁻² h⁻¹,盐截留率为98.5%,这是最好的结果,超过了先前的文献报道。此外,模板化二氧化硅膜表现出优异的水稳定性,证明了它们长期运行的潜力。