Materials & Process Engineering (iMMC-IMAP), Université catholique de Louvain, Place Sainte Barbe 2, 1348 Louvain-la-Neuve, Belgium.
Department of Chemical Engineering, National Institute of Technology Durgapur, M.G. Avenue, Durgapur, West Bengal 713209, India.
Sci Total Environ. 2017 Dec 1;599-600:612-626. doi: 10.1016/j.scitotenv.2017.03.253. Epub 2017 May 8.
The potential of photocatalytic membrane reactors (PMR) to degrade cytostatic drugs is presented in this work as an emerging technology for wastewater treatment. Cytostatic drugs are pharmaceutical compounds (PhCs) commonly used in cancer treatment. Such compounds and their metabolites, as well as their degraded by-products have genotoxic and mutagenic effects. A major challenge of cytostatic removal stands in the fact that most drugs are delivered to ambulant patients leading to diluted concentration in the municipal waste. Therefore safe strategies should be developed in order to collect and degrade the micro-pollutants using appropriate treatment technologies. Degradation of cytostatic compounds can be achieved with different conventional processes such as chemical oxidation, photolysis or photocatalysis but the treatment performances obtained are lower than the ones observed with slurry PMRs. Therefore the reasons why slurry PMRs may be considered as the next generation technology will be discussed in this work together with the limitations related to the mechanical abrasion of polymeric and ceramic membranes, catalyst suspension and interferences with the water matrix. Furthermore key recommendations are presented in order to develop a renewable energy powered water treatment based on long lifetime materials.
本文介绍了光催化膜反应器(PMR)在降解细胞抑制剂药物方面的潜力,将其作为一种新兴的废水处理技术。细胞抑制剂药物是用于癌症治疗的常用药物化合物(PhC)。这些化合物及其代谢物,以及它们的降解副产物具有遗传毒性和致突变性。细胞抑制剂去除的一个主要挑战在于,大多数药物都是提供给流动患者的,导致在城市废水中的浓度被稀释。因此,应开发安全的策略,使用适当的处理技术收集和降解这些微量污染物。细胞抑制剂化合物的降解可以通过不同的常规工艺实现,如化学氧化、光解或光催化,但所获得的处理性能低于浆态 PMR 观察到的性能。因此,本文将讨论浆态 PMR 为何可被视为下一代技术,并讨论与聚合物和陶瓷膜的机械磨损、催化剂悬浮和与水基质的干扰相关的限制因素。此外,还提出了关键建议,以便基于长寿命材料开发可再生能源驱动的水处理技术。