Sorption and Structural Properties of Aerogel Materials Based on Biopolymers

O. Brovko, I. Palamarchuk, N. Gorshkova, N. Bogdanovich, A. D. Ivakhnov
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Abstract

Nowadays aerogel materials (AM) are successfully used as entero- and applicative sorbents to eliminate excessive amounts of heavy metals and toxins from living organisms. Natural biopolymers alginate and chitosan, as well as various lignin derivatives are an inexhaustible raw material base for the creation of AM. A significant number of sorption materials and wound coatings of various types have been developed on their basis, which is associated not only with a wide range of physicochemical properties of these polymers and their already proven biomedical activity, but also with the prevalence and renewability of raw material sources for the production of these polymers, ease of extraction, the possibility of achieving a high degree of purification and relatively low price. The key stage in the AM synthesis is the formation of a strong hydrogel which is the AM framework. One of the technological methods is to obtain interpolyelectrolyte solid hydrogel. The paper proposes two different packaging models for the formation of the structure of interpolyelectrolyte complexes (IPEC) based on biopolymers pairs: sodium alginate (ALNa)–chitosan (CT) and sodium lignosulfonate (LSNa)–CT. The first model is a block model, in which the structure is formed due to ionic bonds between the carboxyl groups of ALNa and amino groups of CT, as well as a cooperative system of hydrogen bonds and dispersion interactions. The second model is an aggregation-tubular model, the structure of which is formed through ionic bonds between sulfogroups (within the rod-shaped supramolecular structures of LSNa) and amino groups of CT, as well as hydrogen bonds and dispersion interactions. Upon the process of IPEC drying under supercritical (SC-) conditions, strong phase contacts are formed, and the changes in the gel structure become irreversible. As a result, hydrophobic micro- and mesoporous two-component AMs differing in internal structure were obtained. AM ALNa–CT are characterized by fibrillar structure, and LSNa–CT – by structural elements of spherical shape. The obtained AM ALNa–CT and LSNa–CT have high sorption activity towards water and a wide range of heavy metals and low molecular weight toxins. The purpose of the work is to study the structural and sorption properties of AM based on biopolymers of various structural organization. A significant increase in the sorption activity of AM ALNa–CT in comparison with LSNa–CT is apparently due to their different supramolecular structure. There is a combination of several sorption mechanisms such as wetting, absorption, diffusion, osmotic phenomena and chemical interaction due to the highly porous structure of AM and the presence of sorption-active centers. For citation: Brovko O.S., Palamarchuk I.A., Gorshkova N.A., Bogdanovich N.I., Ivakhnov A.D. Sorption and Structural Properties of Aerogel Materials Based on Biopolymers. Lesnoy Zhurnal = Russian Forestry Journal, 2023, no. 6, pp. 190–203. (In Russ.). https://doi.org/10.37482/0536-1036-2023-6-190-203
基于生物聚合物的气凝胶材料的吸附性和结构特性
如今,气凝胶材料(AM)已被成功地用作肠道吸附剂和应用吸附剂,以消除生物体内过量的重金属和毒素。天然生物聚合物海藻酸盐和壳聚糖以及各种木质素衍生物是制造气凝胶材料取之不尽的原料基础。在它们的基础上开发出了大量吸附材料和各种伤口涂层,这不仅与这些聚合物广泛的物理化学特性及其已被证实的生物医学活性有关,还与生产这些聚合物的原料来源的普遍性和可再生性、提取的简易性、实现高度纯化的可能性以及相对较低的价格有关。AM 合成的关键步骤是形成作为 AM 框架的强力水凝胶。其中一种技术方法是获得互电解质固体水凝胶。本文基于生物聚合物对:海藻酸钠(ALNa)-壳聚糖(CT)和木质素磺酸钠(LSNa)-CT,提出了两种不同的互电解质复合物(IPEC)结构形成的封装模型。第一个模型是嵌段模型,其中的结构是由 ALNa 的羧基和 CT 的氨基之间的离子键以及氢键和分散相互作用的合作系统形成的。第二个模型是聚集-管状模型,其结构是通过硫基(在 LSNa 的棒状超分子结构中)和 CT 的氨基之间的离子键以及氢键和分散作用形成的。在超临界(SC-)条件下进行 IPEC 干燥时,会形成强相接触,凝胶结构的变化变得不可逆。因此,获得了内部结构不同的疏水性微孔和介孔双组分 AM。AM ALNa-CT 具有纤维状结构,而 LSNa-CT 则具有球形结构元素。获得的 AM ALNa-CT 和 LSNa-CT 对水和多种重金属及低分子量毒素具有很高的吸附活性。这项工作的目的是研究基于不同结构组织的生物聚合物的 AM 结构和吸附特性。与 LSNa-CT 相比,AM ALNa-CT 的吸附活性明显提高,这显然是由于它们的超分子结构不同。由于 AM 的高多孔结构和吸附活性中心的存在,多种吸附机制,如润湿、吸收、扩散、渗透现象和化学作用结合在一起。供引用:Brovko O.S.、Palamarchuk I.A.、Gorshkova N.A.、Bogdanovich N.I.、Ivakhnov A.D.《基于生物聚合物的气凝胶材料的吸附和结构特性》。Lesnoy Zhurnal = 俄罗斯林业期刊》,2023 年第 6 期,第 190-203 页。(In Russ.). https://doi.org/10.37482/0536-1036-2023-6-190-203
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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