Zhang Hongzhuang, Li Mengqing, Liu Zhulan, Cao Yunfeng, Li Ren'ai
Jiangsu Co-Innovation Center for Efficient Processing and Utilization of Forest Resources, Jiangsu Provincial Key Lab Pulp & Paper Science and Technology, Nanjing Forestry University, Nanjing 210037, P. R. China.
ACS Appl Mater Interfaces. 2024 Dec 4;16(48):66584-66593. doi: 10.1021/acsami.4c17587. Epub 2024 Nov 22.
Excessive use of nondegradable plastics has raised environmental concerns, promoting the development of high-performance and eco-friendly materials. Polysaccharides and proteins, which offer advantages such as affordability and biodegradability, have potential in packaging but are limited in barrier and mechanical properties. Herein, using 30% acetic acid as a solvent for soy protein isolate (SPI) and introducing oxidized arabinogalactan (OAG) into the system, highly transparent (90%) and ultraviolet-shielding SPI/OAG flexible films were successfully prepared via Schiff base chemical cross-linking and hydrogen bond interactions between the components. The synergistic cross-linking of SPI and OAG effectively increased mechanical strength (tensile strength of 6.93 MPa), improved oxygen and water vapor barrier properties, and reduced swelling in the SPI/OAG films. The films exhibited good antioxidant activity (81.75% for ABTS and 85.34% for DPPH), effectively retarded browning and weight loss of strawberry and apple pieces, and were biodegradable in soil. The prepared SPI/OAG films had advantages over existing SPI-based films, including a uniform structure, low oxygen permeability, and excellent sustainability. This research demonstrates that SPI/OAG cross-linked films have strong potential in biodegradable packaging and as a substitute for petroleum-based plastics.
不可降解塑料的过度使用引发了环境问题,推动了高性能和环保材料的发展。多糖和蛋白质具有价格低廉和可生物降解等优点,在包装领域具有潜力,但在阻隔性和机械性能方面存在局限。在此,以30%的醋酸作为大豆分离蛋白(SPI)的溶剂,并将氧化阿拉伯半乳聚糖(OAG)引入体系,通过席夫碱化学交联以及各组分之间的氢键相互作用,成功制备出具有高透明度(90%)且能阻隔紫外线的SPI/OAG柔性薄膜。SPI和OAG的协同交联有效提高了机械强度(拉伸强度为6.93 MPa),改善了氧气和水蒸气阻隔性能,并减少了SPI/OAG薄膜的溶胀。这些薄膜表现出良好的抗氧化活性(ABTS为81.75%,DPPH为85.34%),有效延缓了草莓和苹果片的褐变和重量损失,且在土壤中可生物降解。所制备的SPI/OAG薄膜相较于现有的基于SPI的薄膜具有优势,包括结构均匀、低透氧性和出色的可持续性。本研究表明,SPI/OAG交联薄膜在可生物降解包装以及替代石油基塑料方面具有巨大潜力。