ACS Appl Mater Interfaces. 2019 Nov 6;11(44):41245-41257. doi: 10.1021/acsami.9b11707. Epub 2019 Oct 22.
Designing binder-free and core-shell-like electrode materials with synergistic effects has attracted widespread attention for the development of high energy density hybrid supercapacitors (HSCs). Herein, binder-free cobalt molybdate nanosheet-laminated cobalt phosphate micropetals on nickel foam (CoM NS@CoP/NF) were facilely prepared for use as an effective battery-type electrode in HSCs. With the multifunctional features, the rationally combined core-shell-like CoM NS@CoP/NF electrode exhibited a maximum capacity of 886.8 μA h/cm at a current density of 5 mA/cm with a good rate capability of 64.2% and cycling stability of 87.4% (after 10 000 cycles). The high electrochemical performance of the hybrid composite could be attributed to the synergistic effects of hierarchical architectures and large accessible electroactive area, which facilitates the fast electron/transportation within the active material and accelerates the redox chemistry process. Utilizing the superior energy-storage properties, a pouch-type HSC was fabricated with core-shell-like CoM NS@CoP-6 h architectures as a battery-type electrode and activated carbon as a capacitive-type electrode in an aqueous alkaline electrolyte. The miniature hybrid device exhibited maximum energy and power densities of 0.44 mW h/cm and 40.35 mW/cm, respectively, with good cycling stability. Moreover, the HSCs can energize various portable electronic equipments, which demonstrates their suitability for real-time applications.
设计具有协同效应的无粘结剂和核壳状电极材料,为开发高能量密度混合超级电容器(HSCs)吸引了广泛关注。在此,我们通过简便的方法制备了泡沫镍负载的无粘结剂钴钼酸盐纳米片层状磷酸钴微花(CoM NS@CoP/NF),将其用作 HSCs 中有效的电池型电极。具有多功能特性的合理组合的核壳状 CoM NS@CoP/NF 电极在 5 mA/cm 的电流密度下具有 886.8 μA h/cm 的最大容量,具有良好的倍率性能(64.2%)和循环稳定性(10000 次循环后为 87.4%)。该混合复合材料的高电化学性能可归因于分层结构和大的可及电活性面积的协同效应,这有利于活性材料内的快速电子/输运,并加速氧化还原化学过程。利用优越的储能性能,以核壳状 CoM NS@CoP-6 h 结构作为电池型电极,以活性炭作为水系碱性电解质中的电容型电极,制备了袋型 HSC。微型混合器件的最大能量和功率密度分别为 0.44 mW h/cm 和 40.35 mW/cm,具有良好的循环稳定性。此外,这些 HSCs 可以为各种便携式电子设备提供能量,这证明了它们适用于实时应用。