Water‐Based Polyurethane Heating Film with Double‐Layer Conductive Network for a Rapid Electrothermal Response

Author:

Shen Yuanli123,Xiang Yu4,Kuzhandaivel Dhandapani23,Wang Luyao123,Weng Zixiang23,Zheng Longhui23,Wang Jianlei23,Zhang Qia5,Wu Lixin3ORCID

Affiliation:

1. College of Chemistry Fuzhou University Fuzhou 350108 China

2. Fujian Institute of Research on the Structure of Matter Chinese Academy of Sciences Fuzhou Fujian 350002 P. R. China

3. Fujian College University of Chinese Academy of Sciences Fuzhou 350002 China

4. Research and Development Department (R&D) Zhongyu Water‐based Microfibre Technology Co. No. 1048 Xinghua Road Zhangzhou City 363900 Fujian Province China

5. Research and Development Department (R&D) Chunhui Technology Group Co., LTD No. 93 Shaoqi Village Fuzhou City 350018 Fujian Province China

Abstract

Carbon‐based composite materials have garnered widespread attention in the field of personal thermal management (PTM). In these applications, constructing conductive fillers with a highly cross‐linked network is key to achieving the rapid electrothermal conversion of materials. Herein, a novel carbon‐based composite material is successfully developed using screen printing technology, with a waterborne polyurethane (WPU) matrix embedded with carbon nanotubes (CNTs) and calcein‐modified graphene nanosheets (CAG). Due to the strong π–π conjugation interactions present in the highly cross‐linked carbon‐based network, the resulting CAG‐CNTs/WPU composite forms a 3D conductive network, which not only demonstrates a significant synergistic effect but also facilitates efficient transport of electrons and phonons. Experimental results show that the CAG‐CNTs/WPU composite possesses excellent electrothermal conversion properties and an upper high thermal conductivity (3.10 W m−1 K−1). At a low voltage of 5 V, the composite exhibits a rapid response, increasing to 50 °C in 20 s. This research not only highlights the importance of adopting environmentally friendly preparation methods but also emphasizes the synergistic role played by 2D graphene nanosheets and 1D CNTs in building an efficient 3D electrothermal network, which has significant scientific and application value in advancing PTM applications.

Publisher

Wiley

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