Ju Zhengyu, Zhang Xiao, Wu Jingyi, King Steven T, Chang Chung-Chueh, Yan Shan, Xue Yuan, Takeuchi Kenneth J, Marschilok Amy C, Wang Lei, Takeuchi Esther S, Yu Guihua
Materials Science and Engineering Program and Walker Department of Mechanical Engineering, The University of Texas at Austin, Austin, Texas 78712, United States.
Institute for Electrochemically Stored Energy, Stony Brook University, Stony Brook, New York 11794, United States.
Nano Lett. 2022 Aug 24;22(16):6700-6708. doi: 10.1021/acs.nanolett.2c02100. Epub 2022 Aug 3.
The increasing demands of electronic devices and electric transportation necessitate lithium-ion batteries with simultaneous high energy and power capabilities. However, rate capabilities are often limited in high-loading electrodes due to the lengthy and tortuous ion transport paths with their electrochemical behaviors governed by complicated electrode architectures still elusive. Here, we report the electrode-level tortuosity engineering design enabling improved charge storage kinetics in high-energy electrodes. Both high areal capacity and high-rate capability can be achieved beyond the practical level of mass loadings in electrodes with vertically oriented architectures. The electrochemical properties in electrodes with various architectures were quantitatively investigated through correlating the characteristic time with tortuosity. The lithium-ion transport kinetics regulated by electrode architectures was further studied via combining the three-dimensional electrode architecture visualization and simulation. The tortuosity-controlled charge storage kinetics revealed in this study can be extended to general electrode systems and provide useful design consideration for next-generation high-energy/power batteries.
电子设备和电动交通工具需求的不断增加,使得同时具备高能量和高功率性能的锂离子电池成为必需。然而,由于离子传输路径冗长且曲折,高负载电极的倍率性能往往受到限制,其电化学行为受复杂电极结构影响,仍难以捉摸。在此,我们报告了一种电极级曲折度工程设计,可改善高能量电极中的电荷存储动力学。在具有垂直取向结构的电极中,可实现超过实际质量负载水平的高面积容量和高倍率性能。通过将特征时间与曲折度相关联,定量研究了具有各种结构的电极的电化学性能。通过结合三维电极结构可视化和模拟,进一步研究了由电极结构调节的锂离子传输动力学。本研究中揭示的曲折度控制的电荷存储动力学可扩展到一般电极系统,并为下一代高能量/功率电池提供有用的设计考量。