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聚结对镍粉/聚二甲基硅氧烷复合材料各向异性力学和电学性能的影响。

Influence of Coalescence on the Anisotropic Mechanical and Electrical Properties of Nickel Powder/Polydimethylsiloxane Composites.

作者信息

Jang Sung-Hwan, Park Yong-Lae, Yin Huiming

机构信息

Robotics Institute, School of Computer Science, Carnegie Mellon University, Pittsburgh, PA 15213, USA.

Department of Civil Engineering and Engineering Mechanics, Columbia University, New York, NY 10027, USA.

出版信息

Materials (Basel). 2016 Mar 29;9(4):239. doi: 10.3390/ma9040239.

Abstract

Multifunctional polymer-based composites have been widely used in various research and industrial applications, such as flexible and stretchable electronics and sensors and sensor-integrated smart structures. This study investigates the influence of particle coalescence on the mechanical and electrical properties of spherical nickel powder (SNP)/polydimethylsiloxane (PDMS) composites in which SNP was aligned using an external magnetic field. With the increase of the volume fraction of the SNP, the aligned SNP/PDMS composites exhibited a higher tensile strength and a lower ultimate strain. In addition, the composites with aligned SNP showed a lower percolation threshold and a higher electrical conductivity compared with those with randomly dispersed SNP. However, when the concentration of the SNP reached a certain level (40 vol. %), the anisotropy of the effective material property became less noticeable than that of the lower concentration (20 vol. %) composites due to the change of the microstructure of the particles caused by the coalescence of the particles at a high concentration. This work may provide rational methods for the fabrication of aligned composites.

摘要

多功能聚合物基复合材料已广泛应用于各种研究和工业应用中,如柔性和可拉伸电子器件、传感器以及集成传感器的智能结构。本研究调查了颗粒聚结对球形镍粉(SNP)/聚二甲基硅氧烷(PDMS)复合材料力学和电学性能的影响,其中SNP通过外部磁场进行排列。随着SNP体积分数的增加,排列的SNP/PDMS复合材料表现出更高的拉伸强度和更低的极限应变。此外,与随机分散SNP的复合材料相比,排列SNP的复合材料具有更低的渗流阈值和更高的电导率。然而,当SNP的浓度达到一定水平(40体积%)时,由于高浓度下颗粒聚结导致颗粒微观结构的变化,有效材料性能的各向异性比低浓度(20体积%)复合材料的各向异性变得不那么明显。这项工作可能为排列复合材料的制造提供合理的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1034/5502886/6a50795d1d83/materials-09-00239-g001.jpg

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