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通过模拟植物细胞壁结构对纳米纤维素基复合材料导热性和机械性能的双重调控。

Dual regulation of thermal conductivity and mechanical performance of nano cellulose-based composite via mimicking plant cell wall structure.

机构信息

Jiangsu Co-innovation Center for Efficient Processing and Utilization of Forest Resources, Nanjing Forestry University, Nanjing 210037, PR China; Institute of Chemical Industry and Forest Products, Chinese Academy of Forestry, Nanjing 210042, PR China.

Jiangsu Co-innovation Center for Efficient Processing and Utilization of Forest Resources, Nanjing Forestry University, Nanjing 210037, PR China.

出版信息

Int J Biol Macromol. 2024 Oct;278(Pt 3):134705. doi: 10.1016/j.ijbiomac.2024.134705. Epub 2024 Aug 30.

Abstract

Combining thermal conductive fillers and flexible polymers is an agile approach to fabricating composites with heat-conducting performance. However, the thermal conductivity of the composites is hard to reach an equal level to the functional fillers. The mainspring is that the thermally conductive pathways within the composite could not be well-constructed due to the air-induced interface thermal resistance. Herein, inspired by the plant cell wall structure, polyvinyl alcohol (PVA) with abundant hydroxyl groups was adopted as a binder for boosting the thermally conductive pathways construction between cellulose nanofiber (CNF) and alkalized hexagonal boron nitride (BN-OH), also for strengthening the mechanical performance of the composite. The results showed that the tensile strength and through-plane thermal conductivity of the composite were high up to 91.0 MPa and 2.2 W m K at 40 wt% PVA content, exhibiting 121 % and 450 % enhancements compared to pure CNF film (41.2 MPa and 0.4 W m K). Moreover, the composite also presented high thermal stability (decomposition temperature of onset was 218 °C) and good hydrophobicity properties. Overall, this study innovatively proposes an idea for enhancing the thermal conductivity and improving the mechanical properties of the composite, which is indispensable for developing thermal management materials for next-generation electronics.

摘要

将导热填料与柔性聚合物结合是制备具有导热性能的复合材料的一种灵活方法。然而,复合材料的导热性能很难达到与功能填料相当的水平。主要原因是由于空气引起的界面热阻,复合材料内部的导热途径无法得到很好的构建。在本文中,受植物细胞壁结构的启发,采用富含羟基的聚乙烯醇 (PVA) 作为粘结剂,以增强纤维素纳米纤维 (CNF) 和碱化六方氮化硼 (BN-OH) 之间的导热途径构建,同时增强复合材料的机械性能。结果表明,在 40wt% PVA 含量下,复合材料的拉伸强度和平面内热导率高达 91.0 MPa 和 2.2 W m K,与纯 CNF 薄膜(41.2 MPa 和 0.4 W m K)相比,分别提高了 121%和 450%。此外,该复合材料还表现出高热稳定性(起始分解温度为 218°C)和良好的疏水性。总的来说,本研究创新性地提出了一种增强复合材料导热性能和改善其机械性能的思路,这对于开发下一代电子产品的热管理材料是必不可少的。

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