材料科学
聚乳酸
石墨烯
涂层
复合材料
氧化物
纳米复合材料
模数
保形涂层
聚合物
纳米技术
极限抗拉强度
色散(光学)
纳米压痕
环境友好型
钢筋
弹性(材料科学)
弹性模量
图层(电子)
动态力学分析
辅助
聚合物纳米复合材料
热障涂层
无定形固体
热的
分子动力学
艾氏冲击强度试验
同种类的
作者
Shengyao Yang,Jiahui Li,Huihui Zhang,Xiangyang Guo,Ransini Dahanayake,Yuqi Wang,Shanqing Xu,Han Lin,Baohua Jia
标识
DOI:10.1021/acsami.5c24140
摘要
Polylactic acid (PLA), a biodegradable, biocompatible, and environmentally friendly polymer derived from renewable resources, has gained widespread adoption in packaging, biomedical devices, and additive manufacturing. Despite its multifaceted advantages, PLA's intrinsic mechanical limitations, including low Young's modulus, poor impact resistance, and brittleness, significantly restrict its application in high-performance fields. Enhancing PLA's mechanical strength is essential to enable its deployment in demanding sectors, such as load-bearing structures and protective equipment. Graphene oxide (GO), known for its exceptional tensile strength and thermal conductivity, has emerged as a promising reinforcement material for polymer matrices. However, conventional blending methods often result in GO agglomeration and poor dispersion within the PLA matrix, limiting its effectiveness. To address these challenges, we developed a conformal coating strategy that uniformly deposits GO films onto PLA surfaces with precisely controlled layer numbers. This method ensures homogeneous coverage and alignment of GO layers, maximizing mechanical properties with minimum GO material usage. Molecular dynamics simulations predict a 4.27-fold increase in Young's modulus and a 12-fold improvement in dynamic nanoscratching resistance. Experimental nanoindentation confirms a promising modulus enhancement consistent with simulations. This scalable, cost-effective approach simplifies reinforcement, providing a universal method to enhance PLA and other polymeric materials for broad, demanding applications in structurally demanding and performance-critical environments.
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