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光固化丙烯酸酯环氧/ZnO-Ag纳米复合涂层:制备、力学性能及抗菌性能

Photocurable acrylate epoxy/ZnO-Ag nanocomposite coating: fabrication, mechanical and antibacterial properties.

作者信息

Nguyen Thien Vuong, Do Truc Vy, Ngo Thanh Dung, Nguyen Tuan Anh, Lu Le Trong, Vu Quoc Trung, Thi Lan Pham, Tran Dai Lam

机构信息

Institute for Tropical Technology, VAST 18 Hoang Quoc Viet, Cau Giay Hanoi Vietnam

Graduate University of Science and Technology, VAST 18 Hoang Quoc Viet, Cau Giay Hanoi Vietnam.

出版信息

RSC Adv. 2022 Aug 17;12(36):23346-23355. doi: 10.1039/d2ra03546d. eCollection 2022 Aug 16.

Abstract

In this study, a UV-curable acrylate epoxy nanocomposite coating has been prepared by incorporation of ZnO-Ag hybrid nanoparticles. For this purpose, firstly ZnO-Ag hybrid nanoparticles were fabricated by a seed-mediated growth method. Then, these ZnO-Ag hybrid nanoparticles (2 wt%) were added into the UV-curable acrylate resin matrices. The photocuring process of nanocomposite was evaluated by various factors, such as the conversion of acrylate double bonds, pendulum hardness and gel fraction. Under the 4.8 s UV-exposure time for full crosslinking, the obtained data indicated that incorporation of ZnO-Ag nanohybrids into the coating matrix changed the crosslinking process of coating significantly. A mechanical teat indicated that the presence of nanohybrids in photocurable coating matrix enhanced its abrasion resistance from 98.7 to 131.6 L per mil (33.3%). The antibacterial test against over 7 h indicated that bacteria were killed totally by nanocomposite coating, whereas it was 2.6 × 10 CFU mL for the neat coating without nanoparticles.

摘要

在本研究中,通过掺入ZnO-Ag杂化纳米粒子制备了一种可紫外光固化的丙烯酸酯环氧纳米复合涂层。为此,首先采用种子介导生长法制备了ZnO-Ag杂化纳米粒子。然后,将这些ZnO-Ag杂化纳米粒子(2 wt%)添加到可紫外光固化的丙烯酸酯树脂基体中。通过丙烯酸酯双键转化率、摆杆硬度和凝胶分数等多种因素对纳米复合材料的光固化过程进行了评估。在4.8 s的紫外曝光时间下实现完全交联,所得数据表明将ZnO-Ag纳米杂化物掺入涂层基体显著改变了涂层的交联过程。一项机械测试表明,光固化涂层基体中纳米杂化物的存在使其耐磨性从每密耳98.7 L提高到131.6 L(提高了33.3%)。超过7小时的抗菌测试表明,纳米复合涂层能完全杀灭细菌,而不含纳米粒子的纯涂层的细菌数量为2.6×10 CFU/mL。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9fc6/9382360/4a98886db0fe/d2ra03546d-f1.jpg

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