School of Mechanical Engineering and Automation, Beihang University , No. 37 Xueyuan Road, Haidian District, Beijing 100191, China.
ACS Appl Mater Interfaces. 2017 Jan 18;9(2):1593-1601. doi: 10.1021/acsami.6b13505. Epub 2017 Jan 6.
We successfully fabricated a highly anisotropic electrical conductive microcoil/polydimethylsiloxane (PDMS) composite based on helical Spirulina-templated metallic particles using an electric field-induced alignment method. The optimized AC electric field (2 kV/cm, 1 kHz) could efficiently assemble the lightweight conductive microcoils into continuous long chains and form unique end-to-end physical contacts between adjacent particles in the alignment direction, leading to highly conductive channels. Furthermore, the electrical conductivity in the alignment direction reached up to ∼10 S/m for 1 wt % loading and exhibited almost 7-8 orders of magnitude higher than that in perpendicular directions, which is by far the most remarkable conductive anisotropy for anisotropic conductive composites (ACCs). In addition, the anisotropic composites exhibit excellent current-carrying capability in a functional light emitting diode (LED) circuit. Therefore, due to the superior conductive anisotropy and high conductivity, the composites have promising potential in high reliability electrical interconnections and subminiature integrated circuits.
我们成功地使用电场诱导取向方法制备了一种基于螺旋蓝藻模板金属颗粒的高度各向异性导电微螺旋线圈/聚二甲基硅氧烷(PDMS)复合材料。优化的交流电场(2 kV/cm,1 kHz)可以有效地将轻质导电微螺旋线圈组装成连续的长链,并在取向方向上形成相邻颗粒之间独特的端到端物理接触,从而形成高导电性通道。此外,在取向方向上的电导率高达约 10 S/m(负载量为 1 wt%),比垂直方向上的电导率高约 7-8 个数量级,这是迄今为止各向异性导电复合材料(ACCs)中最显著的导电各向异性。此外,各向异性复合材料在功能发光二极管(LED)电路中表现出优异的载流能力。因此,由于具有优异的导电各向异性和高导电性,该复合材料在高可靠性电气连接和超小型集成电路中有很大的应用潜力。