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Chitosan Composites Synthesized Using Acetic Acid and Tetraethylorthosilicate Respond Differently to Methylene Blue Adsorption

机译:乙酸和原硅酸四乙酯合成的壳聚糖复合材料对亚甲基蓝的吸附反应不同

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摘要

The sol-gel and cross-linking processes have been used by researchers to synthesize silica-based nanostructures and optimize their size and morphology by changing either the material or the synthesis conditions. However, the influence of the silica nanostructures on the overall physicochemical and mechanistic properties of organic biopolymers such as chitosan has received limited attention. The present study used a one-step synthetic method to obtain chitosan composites to monitor the uptake and release of a basic cationic dye (methylene blue) at two different pH values. Firstly, the composites were synthesized and characterized by Fourier Transform Infrared Spectroscopy (FTIR) and X-ray Diffraction (XRD) to ascertain their chemical identity. Adsorption studies were conducted using methylene blue and these studies revealed that Acetic Acid-Chitosan (AA-CHI), Tetraethylorthosilicate-Chitosan (TEOS-CHI), Acetic Acid-Tetraethylorthosilicate-Chitosan (AA-TEOS-CHI), and Acetic Acid-Chitosan-Tetraethylorthosilicate (AA-CHI-TEOS) had comparatively lower percentage adsorbances in acidic media after 40 h, with AA-CHI adsorbing most of the methylene blue dye. In contrast, these materials recorded higher percentage adsorbances of methylene blue in the basic media. The release profiles of these composites were fitted with an exponential model. The R-squared values obtained indicated that the AA-CHI at pH ~ 2.6 and AA-TEOS-CHI at pH ~ 7.2 of methylene blue had steady and consistent release profiles. The release mechanisms were analyzed using Korsmeyer-Peppas and Hixson-Crowell models. It was deduced that the release profiles of the majority of the synthesized chitosan beads were influenced by the conformational or surface area changes of the methylene blue. This was justified by the higher correlation coefficient or Pearson’s R values (R ≥ 0.5) computed from the Hixson-Crowell model. The results from this study showed that two of the novel materials comprising acetic acid-chitosan and a combination of equimolar ratios of acetic acid-TEOS-chitosan could be useful pH-sensitive probes for various biomedical applications, whereas the other materials involving the two-step synthesis could be found useful in environmental remediation of toxic materials.
机译:研究人员已使用溶胶-凝胶和交联工艺合成基于二氧化硅的纳米结构,并通过改变材料或合成条件来优化其尺寸和形态。然而,二氧化硅纳米结构对诸如壳聚糖的有机生物聚合物的整体物理化学和机械性能的影响受到了有限的关注。本研究使用一步合成方法获得壳聚糖复合材料,以监测碱性阳离子染料(亚甲基蓝)在两个不同pH值下的吸收和释放。首先,通过傅立叶变换红外光谱(FTIR)和X射线衍射(XRD)合成并表征了复合材料,以确定其化学性质。使用亚甲基蓝进行吸附研究,这些研究表明乙酸-壳聚糖(AA-CHI),原硅酸四乙酯-壳聚糖​​(TEOS-CHI),乙酸-原硅酸四乙酯-壳聚糖​​(AA-TEOS-CHI)和乙酸-壳聚糖在40 h后,原硅酸四乙酯(AA-CHI-TEOS)在酸性介质中的吸附率相对较低,而AA-CHI则吸附了大部分亚甲基蓝染料。相反,这些材料在碱性介质中记录了较高的亚甲基蓝吸附率。这些复合材料的释放曲线符合指数模型。获得的R平方值表明,亚甲基蓝的pH〜2.6的AA-CHI和pH〜7.2的AA-TEOS-CHI具有稳定且一致的释放曲线。使用Korsmeyer-Peppas和Hixson-Crowell模型分析了释放机理。可以推断,大多数合成的壳聚糖珠的释放曲线受亚甲基蓝的构象或表面积变化的影响。根据Hixson-Crowell模型计算得出的更高的相关系数或Pearson的R值(R≥0.5)可以证明这一点。这项研究的结果表明,包含乙酸-壳聚糖和等摩尔比的乙酸-TEOS-壳聚糖的两种新型材料可能是适用于各种生物医学应用的pH敏感探针,而其他涉及这两种材料的材料一步合成可以发现对有毒物质的环境修复是有用的。

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