Lennart Ljunggren, Svetlana Ivanova, Alexander E. Ivanov
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引用次数: 0
摘要
研究人员对琼脂糖凝胶进行了羟烷基胺化处理,以此来改善水中多酚和药物的吸附性。使用三羟甲基氨基甲烷(TRIS)和乙醇胺(EA)对三种市售琼脂糖凝胶(Zetarose FlashFlow4、ZetaCell-CL6B 和 Sepharose 4B)进行了化学改性。与母体凝胶相比,TRIS 和 EA 衍生物对双酚 A 和双氯芬酸的吸附量明显较高。双酚 A 在 TRIS-ZetaCell-CL6B 凝胶上的最大吸附容量 Q max 为 16 μmol/mL,平衡解离常数 KL 为 2.7 × 10-4 mol/L。通过 TRIS-Zetarose FlashFlow 4 过滤双氯芬酸污染的水,在 64 柱体积的流出物中,污染物浓度降低了 10 倍。多酚与 TRIS 和 EA 吸附剂的结合亲和力适中,有利于多酚的高效解吸和柱再生。琼脂糖凝胶中 TRIS 和 EA-吸附剂的作用可用于开发环境吸附剂以及多酚和药物的制备分离。我们考虑了未来吸附剂的物理形状和质地,尤其关注海绵状大孔低温凝胶。这些创新材料未来有望应用于液体和空气过滤。
Hydroxyalkyl Amination of Agarose Gels Improves Adsorption of Bisphenol A and Diclofenac from Water: Conceivable Prospects
The hydroxyalkyl amination of agarose gels was studied as an approach to improve adsorption of polyphenols and pharmaceuticals from water. Three commercially available agarose gels, Zetarose FlashFlow4, ZetaCell-CL6B and Sepharose 4B were chemically modified using tris-(hydroxymethyl)aminomethane, TRIS, and ethanolamine, EA. The adsorbed amounts of bisphenol A and diclofenac were significantly higher on TRIS- and EA-derivatives compared with the parent gels. Regarding bisphenol A adsorption on TRIS-ZetaCell-CL6B, a maximal adsorption capacity, Q max of 16 μmol/mL gel and an equilibrium dissociation constant KL of 2.7 × 10−4 mol/L were observed. Filtration of diclofenac-contaminated water through TRIS-Zetarose FlashFlow 4 resulted in a 10-fold reduction of the pollutant concentration within 64 column volumes of the effluent. The moderate binding affinity of polyphenols to TRIS- and EA-adsorbents facilitates efficient polyphenol desorption and column regeneration. The effects of TRIS- and EA-substituents in agarose gels, can be harnessed for the development of environmental adsorbents, as well as for the preparative separation of polyphenols and pharmaceuticals. We consider the physical shapes and textures of the prospective adsorbents with a particular focus on spongy macroporous cryogels. These innovative materials hold promise for future applications in liquid and air filtration.