Wu Qianlian, Zhang Huimiao, Zhou Yi, Tang Zhishu, Li Bo, Fu Tingming, Zhang Yue, Zhu Huaxu
Jiangsu Collaborative Innovation Center of Chinese Medicinal Resources Industrialization, Nanjing University of Chinese Medicine, Nanjing 210023, China.
Jiangsu Botanical Medicine Refinement Engineering Research Center, Nanjing University of Chinese Medicine, Nanjing 210023, China.
Membranes (Basel). 2022 Dec 9;12(12):1246. doi: 10.3390/membranes12121246.
Ceramic membrane has an important application prospect in industrial acid solution treatment. Enhancement of the acid resistance is the key strategy to optimize the membrane treatment effect. This work reports a core-shell structured membrane fabricated on alumina ceramic substrates via a one-step in situ hydrothermal method. The acid resistance of the modified membrane was significantly improved due to the protection provided by a chemically stable carbon layer. After modification, the masses lost by the membrane in the hydrochloric acid solution and the acetic acid solution were sharply reduced by 90.91% and 76.92%, respectively. Kinetic models and isotherm models of adsorption were employed to describe acid adsorption occurring during the membrane process and indicated that the modified membrane exhibited pseudo-second-order kinetics and Langmuir model adsorption. Compared to the pristine membrane, the faster adsorption speed and the lower adsorption capacity were exhibited by the modified membrane, which further had a good performance with treating various kinds of acid solutions. Moreover, the modified membrane could be recycled without obvious flux decay. This modification method provides a facile and efficient strategy for the fabrication of acid-resistant membranes for use in extreme conditions.
陶瓷膜在工业酸性溶液处理中具有重要的应用前景。提高耐酸性是优化膜处理效果的关键策略。本文报道了一种通过一步原位水热法在氧化铝陶瓷基底上制备的核壳结构膜。由于化学稳定的碳层提供的保护作用,改性膜的耐酸性显著提高。改性后,膜在盐酸溶液和醋酸溶液中的质量损失分别急剧降低了90.91%和76.92%。采用吸附动力学模型和等温线模型来描述膜过程中发生的酸吸附,结果表明改性膜表现出准二级动力学和朗缪尔模型吸附。与原始膜相比,改性膜具有更快的吸附速度和更低的吸附容量,并且在处理各种酸性溶液时具有良好的性能。此外,改性膜可以循环使用而通量没有明显衰减。这种改性方法为制备用于极端条件的耐酸膜提供了一种简便有效的策略。