首页> 美国卫生研究院文献>Membranes >Electro-Conductive Composite Gold-Polyethersulfone-Ultrafiltration-Membrane: Characterization of Membrane and Natural Organic Matter (NOM) Filtration Performance at Different In-Situ Applied Surface Potentials
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Electro-Conductive Composite Gold-Polyethersulfone-Ultrafiltration-Membrane: Characterization of Membrane and Natural Organic Matter (NOM) Filtration Performance at Different In-Situ Applied Surface Potentials

机译:导电复合金-聚醚砜-超滤-膜:在不同原位施加表面电势的膜和天然有机物(NOM)过滤性能的表征

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摘要

Next to the pore size distribution, surface charge is considered to be one main factor in the separation performance of ultrafiltration (UF) membranes. By applying an external surface potential onto an electro-conductive UF membrane, electrostatic induced rejection was investigated. This study introduces in a first part a relatively simple but yet not reported technology of membrane modification with direct current sputter deposition of ultrathin (15 nm) highly conductive gold layers. In a second part, characterization of the gold-coated UF flat sheet membrane with a molecular weight cut-off (MWCO) of 150 kDa is presented. Membrane parameters as contact angle (hydrophobicity), pure water permeability, MWCO, scanning electron microscopy imaging, zeta potential, surface conductivity and cyclic voltammetry of the virgin and the modified membrane are compared. Due to the coating, a high surface conductivity of 107 S m−1 was realized. Permeability of the modified membrane decreased by 40% but MWCO and contact angle remained almost unchanged. In a third part, cross-flow filtration experiments with negative charged Suwannee River Natural Organic Matter (SRNOM) are conducted at different cathodic and anodic applied potentials, different pH values (pH 4, 7, 10) and ionic strengths (0, 1, 10 mmol L−1). SRNOM rejection of not externally charged membrane was 28% in cross-flow and 5% in dead-end mode. Externally negative charged membrane (−1.5 V vs. Ag/AgCl) reached rejection of 64% which was close to the performance of commercial UF membrane with MWCO of 5 kDa. High ionic strengths or low pH of feed reduced the effect of electrostatic rejection.
机译:除孔径分布外,表面电荷被认为是超滤(UF)膜分离性能的主要因素之一。通过将外表面电势施加到导电超滤膜上,研究了静电感应排斥。这项研究在第一部分中介绍了一种相对简单但尚未报道的膜修饰技术,该技术采用直流溅射法沉积超薄(15 nm)高导电金层。在第二部分中,介绍了截留分子​​量(MWCO)为150 kDa的涂金超滤平板膜的表征。比较了膜参数,如接触角(疏水性),纯净水的渗透性,MWCO,扫描电子显微镜成像,Zeta电位,表面电导率以及原始膜和改性膜的循环伏安法。由于该涂层,实现了10 7 S m -1 的高表面电导率。改性膜的渗透率降低了40%,但MWCO和接触角几乎保持不变。在第三部分中,在不同的阴极和阳极施加电势,不同的pH值(pH 4、7、10)和离子强度(0、1)下,使用带负电的Suwannee河天然有机物(SRNOM)进行错流过滤实验。 10 mmol L -1 )。没有外部充电的膜的SRNOM排斥在错流模式下为28%,在死端模式下为5%。外部带负电荷的膜(相对于Ag / AgCl为-1.5 V)达到64%的抑制率,这与MWCO为5 kDa的商用超滤膜的性能接近。饲料的高离子强度或低pH值会降低静电排斥的影响。

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