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3D-printable, highly conductive hybrid composites employing chemically-reinforced, complex dimensional fillers and thermoplastic triblock copolymers

材料科学 复合材料 聚苯乙烯 共聚物 制作 复合数 热塑性塑料 导电体 电极 3D打印 导电聚合物 聚合物 电导率 碳纳米管 炭黑 纳米颗粒 纳米技术 病理 物理化学 天然橡胶 化学 医学 替代医学
作者
Yejin Jo,Ju Young Kim,So-Yun Kim,Yeong-Hui Seo,Kwang-Suk Jang,Su Yeon Lee,Sungmook Jung,Beyong-Hwan Ryu,Hyun‐Suk Kim,Jang‐Ung Park,Youngmin Choi,Sunho Jeong
出处
期刊:Nanoscale [Royal Society of Chemistry]
卷期号:9 (16): 5072-5084 被引量:63
标识
DOI:10.1039/c6nr09610g
摘要

The use of 3-dimensional (3D) printable conductive materials has gained significant attention for various applications because of their ability to form unconventional geometrical architectures that cannot be realized with traditional 2-dimensional printing techniques. To resolve the major requisites in printed electrodes for practical applications (including high conductivity, 3D printability, excellent adhesion, and low-temperature processability), we have designed a chemically-reinforced multi-dimensional filler system comprising amine-functionalized carbon nanotubes, carboxyl-terminated silver nanoparticles, and Ag flakes, with the incorporation of a thermoplastic polystyrene-polyisoprene-polystyrene (SIS) triblock copolymer. It is demonstrated that both high conductivity, 22 939 S cm-1, and low-temperature processability, below 80 °C, are achievable with the introduction of chemically anchored carbon-to-metal hybrids and suggested that the highly viscous composite fluids employing the characteristic thermoplastic polymer are readily available for the fabrication of various unconventional electrode structures by a simple dispensing technique. The practical applicability of the 3D-printable highly conductive composite paste is confirmed with the successful fabrication of wireless power transmission modules on substrates with extremely uneven surface morphologies.

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