材料科学
微观结构
复合数
莲花效应
纳米技术
极限抗拉强度
纤维素
表面能
制作
复合材料
化学工程
有机化学
病理
工程类
化学
医学
替代医学
原材料
作者
Yucheng Hu,Meixue Gan,Yimin Xie,Ying-Song Yu,Qinghua Feng
标识
DOI:10.1016/j.apsusc.2023.157924
摘要
Sustainable and biodegradable products processed from natural biomass offer promising replacement alternatives for nondegradable petrochemical-based plastics. While, the poor water tolerance of biomass is typically insufficient for practical use in applications, such as packaging. This study proposes a simple strategy to imitate the lotus leaf structure. Precision imprinting is performed to construct surface microstructure with simple templates, followed by in situ grafting of low-surface-energy nanoparticles onto the micro-architecture of the cellulose composite film surface. The resulting biometric superhydrophobic cellulosic composite (BSCC) exhibits both stable superhydrophobicity and excellent optical performance (anti-counterfeiting, high transparency (approximately 87%), and high haze (approximately 75%)) owing to the designed microstructure. The BSCC exhibits good self-cleaning behavior, and high tensile strength (>91.4 MPa), and is biodegradable in soil within 87 d. Importantly, this work demonstrates a simple approach to engineering and enhancing cellulose-based materials with superhydrophobicity and tunable optical performance to be able to replace petrochemical plastics.
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