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Flexible, Stackable, and Fully Active Thick Electrode with Scalable 3D Topology Braid Structure Enables Supercontinuous Electron/Ion Transport

作者:Yingying Wang, Huan Chen, Jialin Yang, Chen‐Shuo Zhao, Zhen‐Yi Gu, Xing‐Long Wu, Bao‐Hua Hou · 发表于:Advanced Materials · 年份:2025 · DOI:10.1002/adma.202515575 · 被引用次数:2 · 研究领域:Supercapacitor Materials and Fabrication、Advancements in Battery Materials、Advanced Battery Technologies Research

Abstract Thick electrode design is critical for achieving high energy/power density storage. However, it remains a huge challenge to design a fully‐active thick electrode with supercontinuous electron/ion transport channels by a cost‐effective method. Herein, a flexible, stackable, and fully‐active, fully‐microporous carbon cloth (FMCC) cathode is developed from cotton cloth by a facile strategy for lithium‐ion capacitors (LICs). Fully microporous structure achieves a large specific surface area while retaining a self‐supporting structure. The bi‐directional woven hollow fiber bundle structure achieves supercontinuous ion/electron transport. Significantly, the FMCC can be flexibly stacked in multiple layers to form a 3D topological network structure, achieving a high‐performance thick electrode design. Consequently, the 5‐layer FMCC delivers ultrahigh area‐specific capacity of 1.53 mA h cm −2 even at 1 A g −1 with almost undiminished mass‐specific capacity compared to single‐layer FMCC. Furthermore, a 4.9 V LIC is assembled based on a carbon cloth cathode/anode with a thick electrode design, realizing an excellent energy/power density. Assembled flexible LIC delivers stable power output even under bending/cutting conditions due to the unique electrode structure. In addition, the charge/discharge mechanism and structure–activity relationship of the FMCC are revealed in detail, which provides a constructive view for designing flexible, fully‐active thick electrodes.