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利用原位生长的ZnO纳米棒和热可逆键增强碳纤维增强环氧层压板的机械性能和自修复性能

Enhanced Mechanical and Self-Healing Properties of Carbon Fiber-Reinforced Epoxy Laminates Using In Situ-Grown ZnO Nanorods and Thermo-Reversible Bonds.

作者信息

Banerjee Poulami, Parasuram Sampath, Kumar Subodh, Bose Suryasarathi

机构信息

Department of Materials Engineering, Indian Institute of Science, Bangalore560012, India.

出版信息

ACS Omega. 2023 Oct 26;8(44):41282-41294. doi: 10.1021/acsomega.3c04728. eCollection 2023 Nov 7.

Abstract

Advanced hierarchical carbon fiber epoxy laminates with an engineered interface using in situ-grown ZnO nanorods on carbon fiber resulted in strong mechanical interlocking with the matrix. To further strengthen the interface, "site-specific" modification was realized by modifying the ZnO nanorods with bismaleimide (BMI), which facilitates "thermo-reversible" bonds with graphene oxide (GO) present in the matrix. The resulting laminates exhibited an improvement in flexural strength by 20% and in interlaminar shear strength (ILSS) by 28%. In order to gain a mechanistic insight, few laminates were prepared by "nonselectively" modifying the ZnO-grown carbon fiber (CF) with BMI. The "nonselectively" modified laminates showed flexural strength and ILSS improvement by 43 and 39%, respectively. The "nonselective" modification resulted in a strong improvement in mechanical properties; however, the "site-specific" modification yielded a higher self-healing efficiency (81%). Raman spectroscopy, scanning electron microscopy (SEM) micrographs, atomic force microscope (AFM) analysis, and contact angle analysis indicated a strong interaction of the modified CFs with the resin. Enhanced surface area and energy, along with a decrease in segmental molecular mobility observed from dynamic mechanical analysis, confirmed the mechanism for a better performance. Microscopic images revealed an improved interfacial behavior of the fractured samples, indicating a higher interfacial adhesion in the modified laminates. Besides mechanical properties, these laminates also showed excellent electromagnetic interference (EMI) shielding performance. The laminates with only ZnO-modified CF showed a high shielding effectiveness of -47 dB.

摘要

先进的分层碳纤维环氧树脂层压板具有工程化界面,该界面通过在碳纤维上原位生长氧化锌纳米棒实现,从而与基体形成强大的机械互锁。为了进一步强化界面,通过用双马来酰亚胺(BMI)修饰氧化锌纳米棒实现了“位点特异性”改性,这有助于与基体中存在的氧化石墨烯(GO)形成“热可逆”键。所得层压板的弯曲强度提高了20%,层间剪切强度(ILSS)提高了28%。为了深入了解其机理,制备了少数通过用BMI“非选择性”修饰氧化锌生长的碳纤维(CF)制成的层压板。“非选择性”修饰的层压板的弯曲强度和ILSS分别提高了43%和39%。“非选择性”改性使机械性能有了显著提高;然而,“位点特异性”改性产生了更高的自愈效率(81%)。拉曼光谱、扫描电子显微镜(SEM)显微照片、原子力显微镜(AFM)分析和接触角分析表明,改性碳纤维与树脂之间存在强烈相互作用。动态力学分析表明,表面积和能量增加,同时链段分子迁移率降低,证实了性能更好的机理。微观图像显示断裂样品的界面行为得到改善,表明改性层压板中的界面粘附性更高。除了机械性能外,这些层压板还表现出优异的电磁干扰(EMI)屏蔽性能。仅用氧化锌改性的碳纤维制成的层压板显示出-47 dB的高屏蔽效能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1515/10633825/542ea0ee97b7/ao3c04728_0001.jpg

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