Effective construction of binder-free Ni-Co hydroxides Co9S8/Ni3S2 cubic-honeycomb-like granules for boosted alkaline zinc batteries

Here, 3D (three dimensional) porous Co9S8/Ni3S2 (CNS) nano-cubes with Ni-Co hydroxides nanoflakes cladding (CNS-NCOOH) was engineered through a convenient and easy-to-scale hydrothermal combined with chemical bath deposition strategy. The enriched voids between Ni-Co bimetallic hydroxide nanoflakes...

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Published inColloids and surfaces. A, Physicochemical and engineering aspects Vol. 680; p. 132694
Main Authors Jiang, Shang, Pang, Min, Pang, Mingjun, Mao, Miaomiao, Zhang, Ruxia, Song, Zhaoyang, He, Wenxiu, Wang, Runwei, Wang, Biao, Zhao, Jianguo
Format Journal Article
LanguageEnglish
Published Elsevier B.V 05.01.2024
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Summary:Here, 3D (three dimensional) porous Co9S8/Ni3S2 (CNS) nano-cubes with Ni-Co hydroxides nanoflakes cladding (CNS-NCOOH) was engineered through a convenient and easy-to-scale hydrothermal combined with chemical bath deposition strategy. The enriched voids between Ni-Co bimetallic hydroxide nanoflakes and exclusive micron-level 3D pores of nickel substrate were interconnected and collaboratively supply convenient ion diffusion pathways, as well as adequate free space to accommodate their volume variation during circulation. Meanwhile, the tailored core-shell architecture can stimulate the structural ruggedness of the CNS-NCOOH in alkaline electrolytes during cycling. Consequently, the CNS-NCOOH composites equipped with nickel-cobalt hydroxide nanoflakes exhibited superior performance in a three-electrode system compared to individual CNS-based cubes electrodes, which was primarily credited to the pore-rich, structurally stable, highly-exposed active sites on the surface, as well as the intimate contact between Ni-Co sulfides and Ni-Co hydroxides. In the case of alkaline zinc batteries, the assembled CNS-NCOOH//Zn cells displayed a discharge capacity of 384 μAh cm−2 at 4 mA cm−2 and a capacity retention of 105.8% after 4000 cycles at 12 mA cm−2, indicating a significantly improved electrochemical performance over CNS//Zn cells. These findings provided insights into the exploitation of innovative electrode materials for a high-performance alkaline zinc battery. [Display omitted] •CNS-NCOOH was synthesized using a hydrothermal and subsequent chemical bath deposition strategy.•CNS-NCOOH electrodes with CNS cubes as core and NCOOH nanoflakes as shell possess a three-dimensional porous framework.•Synergistic interaction between Ni-Co hydroxides and Ni-Co sulfides improves charge storage capacity.•The assembled CNS-NCOOH//Zn alkaline battery achieves excellent electrochemical performance.
ISSN:0927-7757
1873-4359
DOI:10.1016/j.colsurfa.2023.132694