材料科学
可伸缩电子设备
导电体
复合材料
导电油墨
导电聚合物
基质(水族馆)
硅酮
分层(地质)
天线(收音机)
导线
胶粘剂
制作
弹性体
光电子学
聚合物
数码产品
电气工程
薄板电阻
医学
古生物学
海洋学
替代医学
俯冲
病理
地质学
生物
构造学
图层(电子)
工程类
作者
Zhuo Li,Taoran Le,Zhenkun Wu,Yagang Yao,Liyi Li,Manos M. Tentzeris,Kyoung‐sik Moon,C.P. Wong
标识
DOI:10.1002/adfm.201403275
摘要
Stretchable radio‐frequency electronics are gaining popularity as a result of the increased functionality they gain through their flexible nature, impossible within the confines of rigid and planar substrates. One approach to fabricating stretchable antennas is to embed stretchable or flowable conductive materials, such as conductive polymers, conductive polymer composites, and liquid metal alloys as stretchable conduction lines. However, these conductive materials face many challenges, such as low electrical conductivity under mechanical deformation and delamination from substrates. In the present study, a silicone‐based electrically conductive adhesive (silo‐ECA) is developed that have a conductivity of 1.51 × 10 4 S cm −1 and can maintain conductivity above 1.11 × 10 3 S cm −1 , even at a large stain of 240%. By using the stretchable silo‐ECAs as a conductor pattern and pure silicone elastomers as a base substrate, stretchable antennas can be fabricated by stencil printing or soft‐lithography. The resulting antenna's resonant frequency is tunable over a wide range by mechanical modulation. This fabrication method is low‐cost, can support large‐scale production, has high reliability over a wide temperature range, and eliminates the concerns of leaking or delamination between conductor and substrate experienced in previously reported micro‐fluidic antennas.
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