Ramezani Maedeh, Ellis Sarah N, Riabtseva Anna, Cunningham Michael F, Jessop Philip G
Department of Chemistry, Queen's University, Kingston, ON K7L 3N6,Canada.
Department of Chemical Engineering, Queen's University, Kingston, ON K7L 3N6,Canada.
ACS Omega. 2023 Dec 13;8(51):49259-49269. doi: 10.1021/acsomega.3c07644. eCollection 2023 Dec 26.
A key challenge in the development of forward osmosis (FO) technology is to identify a suitable draw solute that can generate a large osmotic pressure with favorable water flux while being easy to recover after the FO process with a minimum of energy expenditure. While the CO- and thermo-responsive linear poly(,-dimethylallylamine) polymer (l-PDMAAm) has been reported as a promising draw agent for forward osmosis desalination, the draw solutions sufficiently concentrated to have high osmotic pressure were too viscous to be usable in industrial operations. We now compare the viscosities and osmotic pressures of solutions of these polymers at low and high molecular weights and with/without branching. The best combination of high osmotic pressures with low viscosity can be obtained by using low molecular weights rather than branching. Aqueous solutions of the synthesized polymer showed a high osmotic pressure of 170 bar under CO (π) at 50 wt% loading, generating a high water flux against NaCl feed solutions in the FO process. Under air, however, the same polymer showed a low osmotic pressure and a cloud point between 26 and 33 °C (depending on concentration), which facilitates the recovery of the polymer after it has been used as a draw agent in the FO process upon removal of CO from the system.
正向渗透(FO)技术发展中的一个关键挑战是确定一种合适的汲取溶质,该溶质能够产生较大的渗透压并具有良好的水通量,同时在FO过程之后易于回收且能量消耗最小。虽然据报道,具有CO和热响应性的线性聚(N,N-二甲基烯丙胺)聚合物(l-PDMAAm)是一种有前景的正向渗透脱盐汲取剂,但浓度足够高以产生高渗透压的汲取溶液过于粘稠,无法用于工业操作。我们现在比较了这些聚合物在低分子量和高分子量以及有/无支链情况下溶液的粘度和渗透压。通过使用低分子量而非支链,可以获得高渗透压与低粘度的最佳组合。合成聚合物的水溶液在50 wt%负载量下,在CO₂(π)作用下显示出170 bar的高渗透压,在FO过程中对NaCl进料溶液产生了高水通量。然而,在空气中,相同的聚合物显示出低渗透压,并且浊点在26至33 °C之间(取决于浓度),这有利于在FO过程中用作汲取剂后,通过从系统中去除CO₂来回收聚合物。