Design and Optimization of NR-Based Stretchable Conductive Composites Filled with MoSi2 Nanoparticles and MWCNTs: Perspectives from Experimental Characterization and Molecular Dynamics Simulations
Author:
Jiang Ruifeng1, Ma Yanbin1, Fan Zhuojun2, Chen Yongping1ORCID, Zheng Tingting3, Yu Rentong1, Liao Jianhe1
Affiliation:
1. School of Materials Science and Engineering, Hainan University, Haikou 570228, China 2. School of Mathematics and Statistics, Hainan University, Haikou 570228, China 3. School of Science, Qiongtai Normal University, Haikou 571127, China
Abstract
Stretchable conductive composites play a pivotal role in the development of personalized electronic devices, electronic skins, and artificial implant devices. This article explores the fabrication and characterization of stretchable composites based on natural rubber (NR) filled with molybdenum disilicide (MoSi2) nanoparticles and multi-walled carbon nanotubes (MWCNTs). Experimental characterization and molecular dynamics (MD) simulations are employed to investigate the static and dynamic properties of the composites, including morphology, glass transition temperature (Tg), electrical conductivity, and mechanical behavior. Results show that the addition of MoSi2 nanoparticles enhances the dispersion of MWCNTs within the NR matrix, optimizing the formation of a conductive network. Dynamic mechanical analysis (DMA) confirms the Tg reduction with the addition of MWCNTs and the influence of MoSi2 content on Tg. Mechanical testing reveals that the tensile strength increases with MoSi2 content, with an optimal ratio of 4:1 MoSi2:MWCNTs. Electrical conductivity measurements demonstrate that the MoSi2/MWCNTs/NR composites exhibit enhanced conductivity, reaching optimal values at specific filler ratios. MD simulations further support experimental findings, highlighting the role of MoSi2 in improving dispersion and mechanical properties. Overall, the study elucidates the synergistic effects of nanoparticles and nanotubes in enhancing the properties of stretchable conductive composites.
Funder
National Key Research and Development Program of China National Natural Science Foundation of China Foundation of Guangdong Provincial Key Laboratory of Natural Rubber Processing The Key Research and Development Project of Hainan Province
Reference89 articles.
1. Feng, Q., Wen, Y., Sun, F., Xie, Z., Zhang, M., Wang, Y., Liu, D., Cheng, Z., Mao, Y., and Zhao, C. (2024). Recent Advances in Self-Powered Electronic Skin Based on Triboelectric Nanogenerators. Energies, 17. 2. Yokota, T., Zalar, P., Kaltenbrunner, M., Jinno, H., Matsuhisa, N., Kitanosako, H., Tachibana, Y., Yukita, W., Koizumi, M., and Someya, T. (2016). Ultraflexible organic photonic skin. Sci. Adv., 2. 3. Self-healing electronic skins for aquatic environments;Cao;Nat. Electron.,2019 4. Mechanisms of stretch-mediated skin expansion at single-cell resolution;Aragona;Nature,2020 5. Kang, K., Jung, H., An, S., Baac, H.W., Shin, M., and Son, D. (2021). Skin-like transparent polymer-hydrogel hybrid pressure sensor with pyramid microstructures. Polymers, 13.
|
|