Hao Xuesong, Liu Xueying, Wang Yuhao, Zang Wenpeng, Wu Wenju, Jiang Yingjie, Ning Nanying, Tian Ming, Zhang Liqun
State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing 100029, China.
Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
ACS Appl Mater Interfaces. 2024 Sep 25;16(38):50887-50896. doi: 10.1021/acsami.4c11462. Epub 2024 Sep 12.
In the quest for sustainable and renewable energy sources, researchers and engineers have explored innovative technologies to harvest energy from various environmental sources. Dielectric elastomer generators (DEGs) with high energy harvesting performance have been proven to be promising energy collectors, but achieving a high dielectric constant (ε') and low electrical conductivity () under high electric fields of dielectric elastomer (DE) simultaneously is a struggle, which poses significant challenges. In this study, high-content carboxyl group-grafted liquid polybutadiene (HCPB) is synthesized and then adopted as an organic dielectric filler to blend and cocross-link with a butadiene rubber (BR) matrix to prepare DE composites with high energy harvesting performance. The introduction of carboxyl groups enhances polarization while trapping free Al in the matrix, which revolutionarily achieves a significant increase in ε' under extremely low . Ultimately, the contradiction between increased ε' and decreased under high electric fields is reconciled, resulting in a 30 HCPB/BR composite with high energy density ( = 91.9 mJ/cm) and fine power conversion efficiency ( = 24.1%). This advancement paves the way for the development of HCPB/BR composite-based DEGs with enhanced ε' and energy harvesting performance.
在寻求可持续和可再生能源的过程中,研究人员和工程师探索了创新技术,以从各种环境源中获取能量。具有高能量收集性能的介电弹性体发电机(DEG)已被证明是很有前途的能量收集器,但要在介电弹性体(DE)的高电场下同时实现高介电常数(ε')和低电导率()是一项艰巨的任务,这带来了重大挑战。在本研究中,合成了高含量羧基接枝的液体聚丁二烯(HCPB),然后将其用作有机介电填料,与丁二烯橡胶(BR)基体共混并共交联,以制备具有高能量收集性能的DE复合材料。羧基的引入增强了极化,同时捕获了基体中的自由铝,这在极低的情况下革命性地实现了ε'的显著增加。最终,解决了高电场下ε'增加与降低之间的矛盾,得到了具有高能量密度(= 91.9 mJ/cm)和良好功率转换效率(= 24.1%)的30 HCPB/BR复合材料。这一进展为开发具有增强ε'和能量收集性能的基于HCPB/BR复合材料的DEG铺平了道路。