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可还原自修复复合材料的光学透明性和机械损伤修复。

Reversible Self-Healing for Preserving Optical Transparency and Repairing Mechanical Damage in Composites.

机构信息

Department of Manufacturing Engineering, Ira A. Fulton Schools of Engineering , Arizona State University , 7001 East Williams Field Road , Mesa , Arizona 85212 , United States.

Department of Mechanical Engineering , Khalifa University of Science and Technology , P.O. Box 54224, Abu Dhabi , United Arab Emirates.

出版信息

ACS Appl Mater Interfaces. 2019 Apr 3;11(13):12797-12807. doi: 10.1021/acsami.9b00967. Epub 2019 Mar 19.

Abstract

This research concentrates on the healing of optical properties, roughness, contact angle hysteresis, and shallow scratches in polymer/nanoparticle composites. A series of ternary composite blends [epoxy/halloysite nanotubes (HNTs)/cellulose acetate butyrate (CAB)] with various CAB concentrations were fabricated and subjected to a series of mechanical damages. The optimized concentration of a nanoparticle is 1.0 vol %, and the CAB concentration is 3.0 vol % based on the mechanical reinforcement and wear resistance. Nanoscale scratching, microlevel falling-sand test, and macrolevel Taber abrasions were utilized to damage the surfaces. The induced damage (roughness and surface scratch up to hundreds of nanometers in depth) healed upon heating. At any temperatures above the softening transition of the semi-interpenetrating network structure of the polymer composites, CAB migrates into the microcracks, and the essential mechanical parameters (modulus, strength, strain to failure) are recovered; in our particular epoxy/HNTs/CAB system, optical transparency is also recovered efficiently. CAB also moves to the macroscopic air/specimen interface and favorably modifies the surface properties, reducing the roll-off angles of water droplets from ∼90° to ∼20°. Through an appropriate choice of CAB additives with different molecular weights, the healing temperature can be tailored.

摘要

本研究集中于聚合物/纳米粒子复合材料的光学性质、粗糙度、接触角滞后和浅层划痕的愈合。制备了一系列具有不同 CAB 浓度的三元复合共混物[环氧树脂/埃洛石纳米管(HNTs)/醋酸丁酸纤维素(CAB)],并对其进行了一系列机械损伤。基于机械增强和耐磨性,优化的纳米粒子浓度为 1.0 体积%,CAB 浓度为 3.0 体积%。纳米级划痕、微级落砂试验和宏观级 Taber 磨损用于损伤表面。在高于聚合物复合材料半互穿网络结构软化转变温度的任何温度下,CAB 都会迁移到微裂纹中,并且基本力学参数(模量、强度、失效应变)得到恢复;在我们特定的环氧树脂/HNTs/CAB 体系中,光学透明度也得到了有效恢复。CAB 还迁移到宏观空气/样品界面,并有利地改变表面性质,使液滴滚落角度从约 90°降低至约 20°。通过选择具有不同分子量的 CAB 添加剂,可以调整愈合温度。

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