Department of Chemical and Process Engineering, Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia, 43600 UKM Bangi, Selangor, Malaysia.
Adv Colloid Interface Sci. 2013 Sep;197-198:85-107. doi: 10.1016/j.cis.2013.04.004. Epub 2013 May 2.
The performance of nanofiltration (NF) processes is mainly governed by factors such as the sieving effect (also known as size exclusion) and the Donnan effect (which depends on membrane surface charges). This has encouraged the development of new types of NF membranes using various kinds of polyelectrolytes as they have good pore-sealing effects and are able to improve the membrane surface charge density. Manipulation of the pH, supporting electrolyte concentration, type and concentration of polyelectrolyte solutions can significantly vary the characteristics of polyelectrolyte molecules thus improving their electrostatic interactions with the surrounding compounds. This is highly desired and useful when polyelectrolytes are to be incorporated in membrane surface modification as the charges formed can increase the membrane surface charge density, membrane surface coating stability and membrane selectivity. Most of the research discussed in this paper employed the special features of polyelectrolyte molecules to improve the performance of NF membranes in various applications. Various methods have been used to incorporate polyelectrolytes in order to improve NF membrane performance, such as static deposition, dynamic deposition, single layer coating, layer-by-layer (LbL) coating, and so forth. Some of the suitable devices or instruments used for polyelectrolyte-modified membranes are recommended and evaluated. In conclusion, polyelectrolyte-modified membranes offer significant improvements, can be produced in a short period of time, require less energy during membrane modification or fabrication and incur lower production costs. Thus, a full understanding of the factors affecting polyelectrolyte-modified membranes is very much desired and worth further detailed investigation in the near future.
纳滤(NF)过程的性能主要受筛分效应(也称为尺寸排除)和道南效应(取决于膜表面电荷)等因素的影响。这鼓励了使用各种聚电解质作为 NF 膜的新型开发,因为它们具有良好的孔密封效果,并且能够提高膜表面电荷密度。通过操纵 pH 值、支撑电解质浓度、聚电解质溶液的类型和浓度,可以显著改变聚电解质分子的特性,从而改善它们与周围化合物的静电相互作用。当聚电解质被纳入膜表面改性时,这是非常需要和有用的,因为形成的电荷可以增加膜表面电荷密度、膜表面涂层稳定性和膜选择性。本文讨论的大部分研究都利用了聚电解质分子的特殊性质来提高 NF 膜在各种应用中的性能。已经使用了各种方法将聚电解质纳入其中,以提高 NF 膜的性能,例如静态沉积、动态沉积、单层涂层、层层(LbL)涂层等。还推荐并评估了一些用于聚电解质改性膜的合适设备或仪器。总之,聚电解质改性膜提供了显著的改进,可以在短时间内生产,在膜改性或制造过程中需要较少的能量,并且生产成本较低。因此,充分了解影响聚电解质改性膜的因素是非常需要的,并且值得在不久的将来进行更详细的研究。