Kwak Moo Jin, Yoo Youngmin, Lee Han Sol, Kim Jiyeon, Yang Ji-Won, Han Jong-In, Im Sung Gap, Kwon Jong-Hee
Department of Food Science & Technology and Institute of Agriculture & Life Science, Gyeongsang National University , Jinju, Republic of Korea 660-701.
ACS Appl Mater Interfaces. 2016 Jan 13;8(1):600-8. doi: 10.1021/acsami.5b09655. Epub 2015 Dec 23.
For the efficient separation of lipid extracted from microalgae cells, a novel membrane was devised by introducing a functional polymer coating onto a membrane surface by means of an initiated chemical vapor deposition (iCVD) process. To this end, a steel-use-stainless (SUS) membrane was modified in a way that its surface energy was systemically modified. The surface modification by conformal coating of functional polymer film allowed for selective separation of oil-water mixture, by harnessing the tuned interfacial energy between each liquid phase and the membrane surface. The surface-modified membrane, when used with chloroform-based solvent, exhibited superb permeate flux, breakthrough pressure, and also separation yield: it allowed separation of 95.5 ± 1.2% of converted lipid (FAME) in the chloroform phase from the water/MeOH phase with microalgal debris. This result clearly supported that the membrane-based lipid separation is indeed facilitated by way of membrane being functionalized, enabling us to simplify the whole downstream process of microalgae-derived biodiesel production.
为了高效分离从微藻细胞中提取的脂质,通过引发化学气相沉积(iCVD)工艺在膜表面引入功能聚合物涂层,设计了一种新型膜。为此,对不锈钢(SUS)膜进行了改性,使其表面能得到系统改变。通过功能聚合物膜的保形涂层进行表面改性,利用各液相与膜表面之间调节后的界面能,实现了油水混合物的选择性分离。表面改性后的膜与氯仿基溶剂一起使用时,表现出优异的渗透通量、突破压力和分离产率:它能够从含有微藻碎片的水/甲醇相中分离出氯仿相中95.5±1.2%的转化脂质(脂肪酸甲酯)。这一结果清楚地表明,基于膜的脂质分离确实通过膜功能化得到了促进,使我们能够简化微藻衍生生物柴油生产的整个下游过程。