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]
日期:2017-01-01
卷期号:9 (16): 5072-5084
被引量:63
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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