Wu Zhenghong, Kang Shaomin, Liu Yena, Wang Peipei, Liu Tian, Bushra Rani, Khan Mohammad Rizwan, Guo Jiaqi, Zhu Wenyuan, Xiao Huining, Song Junlong
Jiangsu Co-Innovation Center for Efficient Processing and Utilization of Forest Resources and International Innovation Center for Forest Chemicals and Materials, Nanjing Forestry University, Nanjing 210037, China; School of Automation and Electronic Information, Xiangtan University, Xiangtan 411105, China.
Jiangsu Co-Innovation Center for Efficient Processing and Utilization of Forest Resources and International Innovation Center for Forest Chemicals and Materials, Nanjing Forestry University, Nanjing 210037, China.
Int J Biol Macromol. 2024 Jun;270(Pt 1):132155. doi: 10.1016/j.ijbiomac.2024.132155. Epub 2024 May 9.
This study focuses on enhancing the strength and water stability of paper straws through a novel approach involving a binary emulsion of lignin-based polyurethane and chitosan. Kraft lignin serves as the raw material for synthesizing a blocked waterborne polyurethane, subsequently combined with carboxylated chitosan to form a stable binary emulsion. The resulting emulsion, exhibiting remarkable stability over at least 6 months, is applied to the base paper. Following emulsion application, the paper undergoes torrefaction at 155 °C. This process deblocks isocyanate groups, enabling their reaction with hydroxyl groups on chitosan and fibers, ultimately forming ester bonds. This reaction significantly improves the mechanical strength and hydrophobicity of paper straws. The composite paper straws demonstrate exceptional mechanical properties, including a tensile strength of 47.21 MPa, Young's modulus of 4.33 GPa, and flexural strength of 32.38 MPa. Notably, its water stability is greatly enhanced, with a wet tensile strength of 40.66 MPa, surpassing commercial paper straws by 8 folds. Furthermore, the composite straw achieves complete biodegradability within 120 days, outperforming conventional paper straws in terms of environmental impact. This innovative solution presents a promising and sustainable alternative to plastic straws, addressing the urgent need for eco-friendly products.
本研究聚焦于通过一种新颖的方法来提高纸吸管的强度和水稳定性,该方法涉及基于木质素的聚氨酯和壳聚糖的二元乳液。硫酸盐木质素用作合成封端水性聚氨酯的原料,随后与羧化壳聚糖结合形成稳定的二元乳液。所得乳液在至少6个月内表现出显著的稳定性,并应用于原纸。涂覆乳液后,纸张在155℃下进行烘焙。此过程解封异氰酸酯基团,使其能够与壳聚糖和纤维上的羟基反应,最终形成酯键。该反应显著提高了纸吸管的机械强度和疏水性。复合纸吸管表现出优异的机械性能,包括拉伸强度为47.21MPa、杨氏模量为4.33GPa以及弯曲强度为32.38MPa。值得注意的是,其水稳定性大大提高,湿拉伸强度为40.66MPa,比商业纸吸管高出8倍。此外,复合吸管在120天内可实现完全生物降解,在环境影响方面优于传统纸吸管。这种创新解决方案为塑料吸管提供了一种有前景的可持续替代品,满足了对环保产品的迫切需求。