Augmenting barrier efficiency in clay‐based starch composite films for enhanced packaging sustainability

IF 3.1 4区 工程技术 Q2 POLYMER SCIENCE Polymers for Advanced Technologies Pub Date : 2024-05-31 DOI:10.1002/pat.6458
Priyanka Kumari, Neeraj Kumari, Chandra Mohan, Mysoon M. Al‐Ansari, Saurav Dixit
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Abstract

The pervasive utilization of plastic as a cost‐effective packaging material for food has led to environmental concerns, primarily due to its non‐biodegradable nature and the ensuing release of carbon dioxide gas that contributes to global warming. In response to these challenges, researchers have shifted their focus toward biopolymers to develop eco‐friendly packaging solutions. The present study introduces a novel approach to study the release of micronutrient (Fe) from clay free starch‐glycerol film and clay‐starch‐glycerol composite film. The structural composition and characteristics of the synthesized film are meticulously examined using x‐ray diffraction (XRD), ATR, scanning electron microscopy and transmission electron microscopy analytical techniques. Notably, XRD analysis reveals a significant interaction between the starch chains and Mt through hydrogen bonding, indicative of starch and glycerol intercalation within the nanoclay gallery—a phenomenon further corroborated by IR spectra analysis. The nanoclay‐infused starch/glycerol composite film exhibits a noteworthy 2.22‐fold increase in water vapor permeability compared to clay free film, attributed to the formation of a convoluted diffusion path indicating the enhancement of the barrier performance of starch‐based films. Comparative evaluations against earlier studies are undertaken to elucidate the advancements in barrier properties, subsequently elucidating the underlying mechanisms through analytical interpretations. From the release study, the release of Fe2+ from the film with clay was observed to be more prolonged compared to a film without clay. As a result, the Montmorillonite clay–polymer composite film was selected for coating rice seeds using the dip‐coating method.
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提高粘土基淀粉复合膜的阻隔效率,增强包装的可持续性
塑料作为一种具有成本效益的食品包装材料,其不可生物降解的特性以及随之释放出的二氧化碳气体导致全球变暖,这些普遍存在的问题引起了人们对环境的关注。为应对这些挑战,研究人员已将重点转向生物聚合物,以开发生态友好型包装解决方案。本研究介绍了一种研究无粘土淀粉-甘油薄膜和粘土-淀粉-甘油复合薄膜释放微量元素(铁)的新方法。利用 X 射线衍射(XRD)、ATR、扫描电子显微镜和透射电子显微镜分析技术对合成薄膜的结构组成和特征进行了细致的研究。值得注意的是,X 射线衍射分析表明,淀粉链与 Mt 之间通过氢键发生了显著的相互作用,这表明淀粉和甘油在纳米粘土画廊中发生了插层--红外光谱分析进一步证实了这一现象。与不含粘土的薄膜相比,注入了纳米粘土的淀粉/甘油复合薄膜的水蒸气渗透性显著提高了 2.22 倍,这归因于形成了一条迂回的扩散路径,表明淀粉基薄膜的阻隔性能得到了提高。与之前的研究进行了比较评估,以阐明阻隔性能的提高,随后通过分析解释阐明了潜在的机制。从释放研究中观察到,与不含粘土的薄膜相比,含粘土的薄膜释放 Fe2+ 的时间更长。因此,我们选择了蒙脱石粘土-聚合物复合薄膜,用于采用浸涂法对水稻种子进行包衣。
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来源期刊
Polymers for Advanced Technologies
Polymers for Advanced Technologies 工程技术-高分子科学
CiteScore
6.20
自引率
5.90%
发文量
337
审稿时长
2.1 months
期刊介绍: Polymers for Advanced Technologies is published in response to recent significant changes in the patterns of materials research and development. Worldwide attention has been focused on the critical importance of materials in the creation of new devices and systems. It is now recognized that materials are often the limiting factor in bringing a new technical concept to fruition and that polymers are often the materials of choice in these demanding applications. A significant portion of the polymer research ongoing in the world is directly or indirectly related to the solution of complex, interdisciplinary problems whose successful resolution is necessary for achievement of broad system objectives. Polymers for Advanced Technologies is focused to the interest of scientists and engineers from academia and industry who are participating in these new areas of polymer research and development. It is the intent of this journal to impact the polymer related advanced technologies to meet the challenge of the twenty-first century. Polymers for Advanced Technologies aims at encouraging innovation, invention, imagination and creativity by providing a broad interdisciplinary platform for the presentation of new research and development concepts, theories and results which reflect the changing image and pace of modern polymer science and technology. Polymers for Advanced Technologies aims at becoming the central organ of the new multi-disciplinary polymer oriented materials science of the highest scientific standards. It will publish original research papers on finished studies; communications limited to five typewritten pages plus three illustrations, containing experimental details; review articles of up to 40 pages; letters to the editor and book reviews. Review articles will normally be published by invitation. The Editor-in-Chief welcomes suggestions for reviews.
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