Regmi Sumi, Janaswamy Srinivas
Department of Dairy and Food Science, South Dakota State University, Brookings, SD 57007, USA.
Department of Dairy and Food Science, South Dakota State University, Brookings, SD 57007, USA.
Food Chem. 2024 Dec 1;460(Pt 3):140672. doi: 10.1016/j.foodchem.2024.140672. Epub 2024 Jul 31.
Post-harvest loss of fruits and vegetables, and health risks and environmental impact of current plastic packaging warrant new biodegradable packaging. To this end, cellulosic residue from agricultural processing byproducts is suitable due to its renewability and sustainability. Herein, soyhulls cellulosic residue was extracted, solubilized in ZnCl solution, and crosslinked with calcium ions and glycerol to prepare biodegradable films. The film combination was optimized using Box Behnken Design and film properties were characterized. The optimized film is translucent and exhibits tensile strength, elongation at break, water vapor permeability, hydrophobicity, and IC50 of 6.3 ± 0.6 MPa, 30.2 ± 0.9%, 0.9 ± 0.3 × 10 gm s Pa, 72.6°, and 0.11 ± 0.1 g/mL, respectively. The water absorption kinetics follow the Peleg model and biodegrade within 25 days at 24% soil moisture. The film extends the shelf life of raspberries by 6 more days compared to polystyrene film. Overall, the value-added soyhull cellulosic films are advantageous in minimizing post-harvest loss and plastic-related issues, emphasizing the principles of the circular bioeconomy.
水果和蔬菜的采后损失,以及当前塑料包装对健康的风险和环境影响,促使人们寻求新型可生物降解包装。为此,农业加工副产品中的纤维素残渣因其可再生性和可持续性而成为合适的选择。在此,从豆皮中提取纤维素残渣,将其溶解在氯化锌溶液中,并与钙离子和甘油交联以制备可生物降解薄膜。使用Box Behnken设计对薄膜组合进行优化,并对薄膜性能进行表征。优化后的薄膜是半透明的,其拉伸强度、断裂伸长率、水蒸气透过率、疏水性和半数抑制浓度分别为6.3±0.6兆帕、30.2±0.9%、0.9±0.3×10克/平方米·秒·帕、72.6°和0.11±0.1克/毫升。吸水动力学符合佩莱格模型,在土壤湿度为24%的条件下25天内可生物降解。与聚苯乙烯薄膜相比,该薄膜使树莓的货架期延长了6天。总体而言,增值豆皮纤维素薄膜在最大限度减少采后损失和与塑料相关的问题方面具有优势,凸显了循环生物经济的原则。