Department of Chemical Engineering, Universiti Teknologi PETRONAS, Seri Iskandar, Perak, Malaysia.
Aligarh Muslim University, Aligarh, India.
Environ Res. 2023 Aug 15;231(Pt 1):116058. doi: 10.1016/j.envres.2023.116058. Epub 2023 May 11.
An emerging contaminant of concern in aqueous streams is naproxen. Due to its poor solubility, non-biodegradability, and pharmaceutically active nature, the separation is challenging. Conventional solvents employed for naproxen are toxic and harmful. Ionic liquids (ILs) have attracted great attention as greener solubilizing and separating agent for various pharmaceuticals. ILs have found extensive usage as solvents in nanotechnological processes involving enzymatic reactions and whole cells. The employment of ILs can enhance the effectiveness and productivity of such bioprocesses. To avoid cumbersome experimental screening, in this study, conductor like screening model for real solvents (COSMO-RS) was used to screen ILs. Thirty anions and eight cations from various families were chosen. Activity coefficient at infinite dilution, capacity, selectivity, performance index, molecular interactions using σ-profiles and interaction energies were used to make predictions about solubility. According to the findings, quaternary ammonium cations, highly electronegative, and food-grade anions will form excellent ionic liquid combinations for solubilizing naproxen and hence will be better separating agents. This research will contribute easy designing of ionic liquid-based separation technologies for naproxen. In different separation technologies, ionic liquids can be employed as extractants, carriers, adsorbents, and absorbents.
在水流中,一种新出现的令人关注的污染物是萘普生。由于其溶解度低、不可生物降解和具有药物活性,因此分离具有挑战性。传统用于萘普生的溶剂具有毒性和危害性。离子液体 (ILs) 作为一种更环保的溶解和分离各种药物的试剂,引起了人们的极大关注。ILs 已广泛用作涉及酶反应和整个细胞的纳米技术过程中的溶剂。使用 ILs 可以提高这些生物过程的效率和生产力。为了避免繁琐的实验筛选,在本研究中,使用了用于实际溶剂的导体相似筛选模型 (COSMO-RS) 来筛选 ILs。从各种家族中选择了 30 种阴离子和 8 种阳离子。无限稀释时的活度系数、容量、选择性、性能指数、使用 σ-轮廓的分子相互作用和相互作用能用于预测溶解度。根据研究结果,高电负性和食品级阴离子的季铵阳离子将形成用于溶解萘普生的极好的离子液体组合,因此将成为更好的分离剂。这项研究将有助于设计基于离子液体的萘普生分离技术。在不同的分离技术中,离子液体可以用作萃取剂、载体、吸附剂和吸收剂。