Department of Food, Nutrition and Packaging Sciences, Clemson University, Clemson 29634, SC, USA.
Department of Food, Nutrition and Packaging Sciences, Clemson University, Clemson 29634, SC, USA.
Food Res Int. 2022 Jul;157:111384. doi: 10.1016/j.foodres.2022.111384. Epub 2022 May 19.
This paper documents the preparation of three biopolymer films: 1) pearl millet starch (PMS) films, 2) PMS films reinforced with cellulose nanocrystals (CNCs), and 3) PMS films reinforced with CNCs stabilized Pickering emulsion of clove bud oil (CBO) and a comparison of their mechanical and water barrier properties and biodegradation behavior in soil. Reinforcing PMS films with Kudzu CNCs/CBO significantly increased tensile strength (from 3.9 to 16.7 MPa) and Young's modulus (from 90 to 376 MPa) but reduced the elongation (54.2 to 30 %) at the break of nanocomposite films. Also, the water vapor permeability of nanocomposite films decreased (from 9.60 to 7.25 × 10gmsPa) with the incorporation of Kudzu CNCs/CBO. The fastest biodegradation was observed for PMS films (98% in 15 days), followed by PMS films reinforced with Kudzu CNCs (96% in 18 days), followed by PMS films reinforced with Kudzu CNCs stabilized Pickering emulsions (94% in 21 days). The morphological analysis found hyphae-like structure formation due to microbial action, which increased over time. In general, all three biopolymer films showed good biodegradation behavior, and they all degraded between 15 and 21 days, suggesting that starch-based films reinforced with Kudzu CNCs provide a technique for the production of biodegradable packaging material.
1)珍珠粟淀粉(PMS)薄膜,2)用纤维素纳米晶体(CNC)增强的 PMS 薄膜,以及 3)用 CNC 稳定的丁香花蕾油(CBO)Pickering 乳液增强的 PMS 薄膜,并比较了它们的机械和水阻隔性能以及在土壤中的生物降解行为。用葛藤 CNC/CBO 增强 PMS 薄膜显著提高了拉伸强度(从 3.9 MPa 提高到 16.7 MPa)和杨氏模量(从 90 MPa 提高到 376 MPa),但断裂伸长率(从 54.2%降低到 30%)降低了。此外,纳米复合材料薄膜的水蒸气透过率也降低了(从 9.60×10gmsPa 降低到 7.25×10gmsPa)。葛藤 CNC/CBO 的加入。PMS 薄膜的生物降解最快(15 天内降解 98%),其次是葛藤 CNC 增强的 PMS 薄膜(18 天内降解 96%),其次是葛藤 CNC 稳定的 Pickering 乳液增强的 PMS 薄膜(21 天内降解 94%)。形态分析发现,由于微生物的作用,形成了菌丝状结构,随着时间的推移而增加。总的来说,这三种生物聚合物薄膜都表现出良好的生物降解行为,它们都在 15 到 21 天内降解,这表明葛藤纳米纤维素增强的淀粉基薄膜为可生物降解包装材料的生产提供了一种技术。