3D-Printed Polyamide 12/Styrene–Acrylic Copolymer–Boron Nitride (PA12/SA–BN) Composite with Macro and Micro Double Anisotropic Thermally Conductive Structures

Author:

Chen Minhang12,Chen Xiaojie1,Zhang Junle3,Xue Bingfeng3,Zhai Shangyu1,She Haibo4,Zhang Yuancheng1,Cui Zhe1ORCID,Fu Peng1,Pang Xinchang1,Liu Minying1,Zhang Xiaomeng124

Affiliation:

1. School of Materials Science and Engineering, Henan Key Laboratory of Advanced Nylon Materials and Application, Engineering Laboratory of High-Performance Nylon Engineering Plastics of China Petroleum and Chemical Industry, Zhengzhou University, Zhengzhou 450000, China

2. The State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute, Sichuan University, Chengdu 610065, China

3. Faculty of Engineering, Huanghe Science and Technology University, Zhengzhou 459000, China

4. Jinguan Electric Co., Ltd., Nanyang 473000, China

Abstract

Anisotropic thermally conductive composites are very critical for precise thermal management of electronic devices. In this work, in order to prepare a composite with significant anisotropic thermal conductivity, polyamide 12/styrene–acrylic copolymer–boron nitride (PA12/SA–BN) composites with macro and micro double anisotropic structures were fabricated successfully using 3D printing and micro-shear methods. The morphologies and thermally conductive properties of composites were systematically characterized via SEM, XRD, and the laser flash method. Experimental results indicate that the through-plane thermal conductivity of the composite is 4.2 W/(m·K) with only 21.4 wt% BN, which is five times higher than that of the composite with randomly oriented BN. Simulation results show that the macro-anisotropic structure of the composite (caused by the selective distribution of BN) as well as the micro-anisotropic structure (caused by the orientation structure of BN) both play critical roles in spreading heat along the specified direction. Therefore, as-obtained composites with double anisotropic structures possess great potential for the application inefficient and controllable thermal management in various fields.

Funder

China Postdoctoral Science Foundation

National Natural Science Foundation of China

Henan Postdoctoral Foundation

Opening Project of State Key Laboratory of Polymer Materials Engineering

Key Scientific Research Projects of Colleges and Universities in Henan Province

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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