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具有仿生多层结构和多重氢键相互作用的木质纤维素复合纸的增强力学性能和介电性能。

Enhanced mechanical and dielectric properties of lignocellulosic composite papers with biomimetic multilayered structure and multiple hydrogen-bonding interactions.

作者信息

Ji Dexian, Zhang Meiyun, Sun Hao, Yuan Baolong, Ma Cong, He Zhuofan, Ni Yonghao, Song Shunxi

机构信息

College of Bioresources Chemical and Materials Engineering, National Demonstration Center for Experimental Light Chemistry Engineering Education, Shaanxi Province Key Laboratory of Papermaking Technology and Specialty Paper Development, Shaanxi University of Science & Technology, Xi'an 710021, China; Department of Chemical Engineering, University of New Brunswick, Fredericton, NB E3B 5A3, Canada.

College of Bioresources Chemical and Materials Engineering, National Demonstration Center for Experimental Light Chemistry Engineering Education, Shaanxi Province Key Laboratory of Papermaking Technology and Specialty Paper Development, Shaanxi University of Science & Technology, Xi'an 710021, China; Key Laboratory of Auxiliary Chemistry and Technology for Chemical Industry, Ministry of Education, Shaanxi University of Science & Technology, Xi'an 710021, China; Shaanxi Collaborative Innovation Center of Industrial Auxiliary Chemistry and Technology, Shaanxi University of Science & Technology, Xi'an 710021, China.

出版信息

Int J Biol Macromol. 2024 Nov;281(Pt 3):136247. doi: 10.1016/j.ijbiomac.2024.136247. Epub 2024 Oct 9.

Abstract

Lignocellulosic papers (LCP) are favored for electrical insulating applications due to their environmental friendliness, ease of processing, and cost-effectiveness. However, the loose structure and numerous pores inside LCP result in the poor mechanical and electrical insulating properties, posing challenges in meeting the requirements for the rapid upgrading of high-voltage electrical equipment. Herein, a 3D interconnective structure composed of 3D aramid nanofibers (ANF) and 2D carbonylated basalt nanosheets (CBSNs) is introduced to enhance the structure and the chemical bonding interactions of LCP. This is achieved by impregnating LCP into an ANF-CBSNs suspension, where the 3D interconnective ANF framework hosts numerous CBSNs. The resultant LCP/ANF-CBSNs (LCP/A-C) composite papers exhibit multilayered structure and multiple hydrogen-bonding interactions, demonstrating excellent mechanical and electrical insulating properties. Notably, the optimized LCP/A-C5 composite papers exhibit remarkable tensile strength (23.15 MPa) and dielectric breakdown strength (20.14 kV·mm), respectively, representing 229 % and 145 % increase compared to those of the control LCP. These impressive properties are integrated with excellent bending ability, outstanding high temperature resistance, exceptional volume resistivity, and low dielectric constant and loss, demonstrating their potential as highly promising electrical insulating papers for advanced high-power electrical equipment.

摘要

木质纤维素纸(LCP)因其环境友好、易于加工和成本效益高而在电气绝缘应用中受到青睐。然而,LCP内部结构疏松且孔隙众多,导致其机械性能和电气绝缘性能较差,这对满足高压电气设备快速升级的要求构成了挑战。在此,引入了一种由3D芳纶纳米纤维(ANF)和2D羰基化玄武岩纳米片(CBSN)组成的三维互连结构,以增强LCP的结构和化学键相互作用。这是通过将LCP浸渍到ANF-CBSN悬浮液中来实现的,其中三维互连的ANF框架容纳了大量的CBSN。所得的LCP/ANF-CBSN(LCP/A-C)复合纸呈现出多层结构和多种氢键相互作用,展现出优异的机械性能和电气绝缘性能。值得注意的是,优化后的LCP/A-C5复合纸分别表现出显著的拉伸强度(23.15MPa)和介电击穿强度(20.14kV·mm),与对照LCP相比分别提高了229%和145%。这些令人印象深刻的性能与出色的弯曲能力、卓越的耐高温性、优异的体积电阻率以及低介电常数和损耗相结合,表明它们作为先进高功率电气设备极具潜力的电气绝缘纸的可能性。

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