Xu Ruiqi, OuYang Hongfei, Huang Zeqin, Huang Gang, Wang Jin, Zhang Guizhen
Key Laboratory of Polymer Processing Engineering of the Ministry of Education, National Engineering Research Center of Novel Equipment for Polymer Processing, Guangdong Provincial Key Laboratory of Technique and Equipment for Macromolecular Advanced Manufacturing, School of Mechanical and Automative Engineering, South China University of Technology, Guangzhou 510641, People's Republic of China.
ACS Appl Mater Interfaces. 2024 Dec 25;16(51):70906-70918. doi: 10.1021/acsami.4c17048. Epub 2024 Dec 11.
As one of the key components of supercapacitors (SCs), separators can directly affect the energy density, output power, and safety stability of SCs. However, it is still a challenge to prepare separators that simultaneously combine large pore size, ultrathin thickness, and excellent mechanical properties. Herein, a 5 μm ultrathin separator with a three-dimensional (3D) porous nanofiber skeleton dotted by fumed AlO nanoparticles has been developed using biaxial stretching. The unique structure of the 3D porous nanofiber skeleton ensures a mechanical strength up to 40 MPa, while the fumed AlO nanoparticles dotted on the 3D skeleton and the incorporation of the annealing process achieve a large average pore size of 130.8 nm, thus harmoniously resolving the contradiction between strength and large average pore size for ultrathin composite separators. The ultrathin thickness greatly shortens the ion transmission channel and effectively reduces ion transmission resistance. Moreover, the fumed AlO nanoparticles exposed on the surface of the 3D porous nanofiber skeleton enhance the wettability of the electrolyte as well as the thermal stability of the separator, achieving a low bulk resistance of 0.3 Ω and zero shrinkage at 130 °C. Due to the unique structure, UAPFS7 offers a better overall performance compared to commercial separators. These findings indicate that the developed separators exhibit excellent comprehensive performance and have the potential to promote the large-scale application of next-generation energy storage devices.
作为超级电容器(SCs)的关键组件之一,隔膜会直接影响超级电容器的能量密度、输出功率和安全稳定性。然而,制备同时兼具大孔径、超薄厚度和优异机械性能的隔膜仍是一项挑战。在此,通过双轴拉伸开发出了一种5μm超薄隔膜,其具有由气相法AlO纳米颗粒点缀的三维(3D)多孔纳米纤维骨架。3D多孔纳米纤维骨架的独特结构确保了高达40MPa的机械强度,而点缀在3D骨架上的气相法AlO纳米颗粒以及退火工艺的引入实现了130.8nm的大平均孔径,从而和谐地解决了超薄复合隔膜强度与大平均孔径之间的矛盾。超薄的厚度极大地缩短了离子传输通道并有效降低了离子传输电阻。此外,暴露在3D多孔纳米纤维骨架表面的气相法AlO纳米颗粒增强了电解质的润湿性以及隔膜的热稳定性,实现了0.3Ω的低体积电阻以及在130℃下零收缩。由于其独特的结构,UAPFS7与商用隔膜相比具有更好的整体性能。这些发现表明,所开发的隔膜具有优异的综合性能,并且有潜力推动下一代储能设备的大规模应用。