Faculty of Chemistry, Maria Curie-Sklodowska University, M. Curie-Sklodowska Sq. 3, 20-031 Lublin, Poland.
Chuiko Institute of Surface Chemistry, National Academy of Sciences of Ukraine, 17 General Naumov Str., 03164 Kyiv, Ukraine.
Int J Mol Sci. 2023 Jul 23;24(14):11818. doi: 10.3390/ijms241411818.
A series of new types of composites (biopolymer-silica materials) are proposed as selective and effective adsorbents. A new procedure for the synthesis of chitosan-nanosilica composites (ChNS) and chitosan-silica gel composites (ChSG) using geometrical modification of silica and mechanosorption of chitosan is applied. The highest adsorption efficiency was achieved at pH = 2, hence the desirability of modifications aimed at stabilizing chitosan in such conditions. The amount of chitosan in the synthesis grew to 1.8 times the adsorption capacity for the nanosilica-supported materials and 1.6 times for the silica gel-based composites. The adsorption kinetics of anionic dyes (acid red AR88) was faster for ChNS than for ChSG, which results from a silica-type effect. The various structural, textural, and physicochemical aspects of the chitosan-silica adsorbents were analyzed via small-angle X-ray scattering, scanning electron microscopy, low-temperature gas (nitrogen) adsorption, and potentiometric titration, as well as their adsorption effectiveness towards selected dyes. This indicates the synergistic effect of the presence of dye-binding groups of the chitosan component, and the developed interfacial surface of the silica component in composites.
一系列新型复合材料(生物聚合物-二氧化硅材料)被提议作为选择性和有效的吸附剂。应用了一种新的方法,通过二氧化硅的几何修饰和壳聚糖的机械吸附来合成壳聚糖-纳米二氧化硅复合材料(ChNS)和壳聚糖-硅胶复合材料(ChSG)。在 pH = 2 时,吸附效率最高,因此需要对旨在稳定壳聚糖的改性进行优化。在合成中,壳聚糖的用量增加到纳米二氧化硅载体材料吸附能力的 1.8 倍,硅胶基复合材料的吸附能力增加到 1.6 倍。与 ChSG 相比,ChNS 对阴离子染料(酸性红 AR88)的吸附动力学更快,这是由于二氧化硅的类型效应。通过小角 X 射线散射、扫描电子显微镜、低温气体(氮气)吸附和电位滴定以及对所选染料的吸附效果,分析了壳聚糖-硅胶吸附剂的各种结构、织构和物理化学方面。这表明了壳聚糖组分中存在的染料结合基团与复合材料中二氧化硅组分的开发界面表面之间的协同效应。