Yao Lin, Sun Hui, Yu Chang, Weng Yunxuan
College of Light Industry Science and Engineering, Beijing Technology and Business University, Beijing 100048, China.
Beijing Key Laboratory of Quality Evaluation Technology for Hygiene and Safety of Plastics, Beijing Technology and Business University, Beijing 100048, China.
Polymers (Basel). 2025 Apr 16;17(8):1080. doi: 10.3390/polym17081080.
The development of biodegradable alternatives to petroleum-based packaging is essential for environmental sustainability. This study presents a novel approach to enhance the performance of hemicellulose-based films by fabricating xylan/polyvinyl alcohol (PVA) composites reinforced with zinc oxide nanoparticles (nano-ZnO). To address nano-ZnO agglomeration, sodium hexametaphosphate (SHMP) was utilized as a dispersant, while sorbitol improved film flexibility. The composite films were prepared via solution casting, and the effects of nano-ZnO content (0-2.5 wt%) on mechanical, thermal, and barrier properties were systematically evaluated. Results showed that at 2 wt% nano-ZnO loading, the tensile strength increased from 15.0 MPa (control) to 26.15 MPa, representing a 74% enhancement, while oxygen permeability decreased from 1.83 to 0.50 (cm·μm)/(m·d·kPa). Additionally, the thermal stability also improved due to hydrogen bonding and uniform nanoparticle dispersion. At this optimized loading, the hydrophobcity was also maximized, with the contact angle peaking at 74.4° and water vapor permeability decreasing by 18% (1.53·10·g·h·m·Pa). Excessive nano-ZnO loading (>2 wt%) induced particle agglomeration, generating stress concentrators that disrupted the polymer-nanoparticle interface and compromised mechanical integrity. These findings highlight the potential of nano-ZnO-modified xylan/PVA films as sustainable, high-performance alternatives to conventional packaging. The synergistic use of SHMP and nano-ZnO provides a strategy for designing eco-friendly materials with tunable properties, advancing the use of biomass in food preservation applications.
开发石油基包装的可生物降解替代品对于环境可持续性至关重要。本研究提出了一种新方法,通过制备用氧化锌纳米颗粒(纳米ZnO)增强的木聚糖/聚乙烯醇(PVA)复合材料来提高基于半纤维素的薄膜的性能。为了解决纳米ZnO的团聚问题,使用六偏磷酸钠(SHMP)作为分散剂,而山梨醇提高了薄膜的柔韧性。通过溶液浇铸制备复合薄膜,并系统评估了纳米ZnO含量(0-2.5 wt%)对机械、热和阻隔性能的影响。结果表明,在纳米ZnO负载量为2 wt%时,拉伸强度从15.0 MPa(对照)提高到26.15 MPa,提高了74%,而氧气透过率从1.83降至0.50(cm·μm)/(m·d·kPa)。此外,由于氢键和纳米颗粒的均匀分散,热稳定性也得到了提高。在这个优化的负载量下,疏水性也达到了最大值,接触角峰值为74.4°,水蒸气透过率降低了18%(1.53·10·g·h·m·Pa)。过量的纳米ZnO负载量(>2 wt%)会导致颗粒团聚,产生应力集中器,破坏聚合物-纳米颗粒界面并损害机械完整性。这些发现突出了纳米ZnO改性木聚糖/PVA薄膜作为传统包装的可持续、高性能替代品的潜力。SHMP和纳米ZnO的协同使用为设计具有可调性能的环保材料提供了一种策略,推动了生物质在食品保鲜应用中的使用。