Flexible Conductive Composites with Programmed Electrical Anisotropy Using Acoustophoresis

材料科学 导电体 复合材料 电导率 复合数 各向异性 粒子(生态学) 电阻率和电导率 渗流阈值 电气工程 地质学 化学 物理化学 工程类 物理 海洋学 量子力学
作者
Drew S. Melchert,Rachel R. Collino,Tyler R. Ray,Neil D. Dolinski,Leanne Friedrich,Matthew R. Begley,Daniel S. Gianola
出处
期刊:Advanced materials and technologies [Wiley]
卷期号:4 (12) 被引量:42
标识
DOI:10.1002/admt.201900586
摘要

Abstract Developing mechanically flexible composite materials with high electrical conductivity is currently hindered by the need to use high loading of conductive filler, which severely limits flexibility. Here, acoustic focusing is used to control arrangement of conductive particles in photopolymer matrices to create composites with both tunable conductivity and flexibility. Acoustophoresis patterns filler particles into highly efficient percolated networks which utilize up to 97% of the particles in the composite, whereas the inefficient stochastic networks of conventional dispersed‐fiber composites utilize < 5%. These patterned materials have conductivity an order of magnitude higher than conventional composites made with the same ink, reaching 48% the conductivity of bulk silver within the assembled silver‐particle networks (at 2.6 vol% loading). They also have low particle loading so that they are flexible, withstanding > 500 bending cycles without losses in conductivity and changing conductivity only 5% within cycles on average. In contrast, conventional unpatterned composites with the same conductivity require such high loading that they are prohibitively brittle. Finally, modulating the applied acoustic field controls the anisotropy of the conductive networks and produces materials which are either 2D conductive, 1D conductive, or insulating, using the same nozzle and ink, paving the way for versatile multifunctional 3D printing.
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