Zheng Shuo, Zhao Xuanchen, Xie Junhao, Sun Shulin
School of Chemical Engineering, Changchun University of Technology, Changchun 130012, China.
Engineering Research Center of Synthetic Resin and Special Fiber, Ministry of Education, Changchun University of Technology, Changchun 130012, China.
Phys Chem Chem Phys. 2023 Dec 6;25(47):32482-32492. doi: 10.1039/d3cp04317g.
Polymer-based dielectric materials have been used in film capacitors due to their rapid charge-discharge rate, lightness, and low cost. Nevertheless, the energy storage properties of these dielectric films were limited by their weak polarization ability and low discharge energy density. Herein, the solution casting method was used to prepare all-organic crosslinked composite films using linear methyl methacrylate--glycidyl methacrylate (MG) as the matrix and ferroelectric poly(vinylidene fluoride) (PVDF) as the organic filler. The crosslinked MG networks can enhance the breakdown strength, restrain dielectric loss, and keep high discharge efficiency. What's more, the presence of PVDF can compensate for the low electrical displacement, improve the permittivity, and overcome the brittleness of the crosslinked films. The optimal all-organic crosslinked dielectric film exhibited an ultrahigh breakdown strength of 800 MV m and a high efficiency of 77.4%. The maximum energy density of the composite film reached up to 12.1 J cm, which was nearly 120% higher than the energy density of 5.6 J cm of the pure MG film. The enhancement in energy storage properties is ascribed to the synergistic effects of chemical crosslinking and hydrogen bonding. This study offers a feasible method for all-organic polymer films to fabricate energy storage equipment.
基于聚合物的介电材料因其快速的充放电速率、轻便性和低成本而被用于薄膜电容器。然而,这些介电薄膜的储能性能受到其弱极化能力和低放电能量密度的限制。在此,采用溶液浇铸法,以线性甲基丙烯酸甲酯 - 甲基丙烯酸缩水甘油酯(MG)为基体,铁电聚偏二氟乙烯(PVDF)为有机填料,制备了全有机交联复合薄膜。交联的MG网络可以提高击穿强度、抑制介电损耗并保持高放电效率。此外,PVDF的存在可以弥补低电位移,提高介电常数,并克服交联薄膜的脆性。最佳的全有机交联介电薄膜表现出800 MV/m的超高击穿强度和77.4%的高效率。复合薄膜的最大能量密度达到12.1 J/cm³,比纯MG薄膜的5.6 J/cm³的能量密度高出近120%。储能性能的提高归因于化学交联和氢键的协同作用。本研究为全有机聚合物薄膜制造储能设备提供了一种可行的方法。