Electronic Structure Modulation of NiCo 2 S 4 Hollow Dodecahedrons by In Situ Compositing MoS 2 for Boosted Reaction Kinetics in Li–O 2 Batteries

ABSTRACT Rechargeable Li–O 2 batteries have attracted significant attention as a next‐generation energy storage technology because of their extremely high theoretical energy density. However, practical implementation remains hindered by limited energy density, poor cycling stability, pronounced parasitic reactions, and elevated overpotentials. Using zeolitic imidazolate frameworks (ZIFs) as templates, MoS 2 @NiCo 2 S 4 heterostructures were formed in situ via conversion to bimetallic layered double hydroxides, and the resulting hollow architecture was assembled from MoS 2 and NiCo 2 S 4 nanosheets. MoS 2 @NiCo 2 S 4 cathodes deliver remarkable discharge/charge specific capacities of 12412/11453 mAh g −1 at 100 mA g −1 and enhanced cycling stability over 208 cycles at 500 mA g −1 in Li–O 2 batteries. The improved performance of MoS 2 @NiCo 2 S 4 is mainly due to strong interactions between these two phases, with a hollow, porous structure that enhances regulation of reaction intermediates and enables precise control over electrochemical pathways during charging and discharging. Specifically, uniform formation and efficient decomposition of conformal Li 2 O 2 films were facilitated, and detrimental issues were effectively eased, resulting in improved reaction kinetics, enhanced capacity retention, and extended cycling stability. These findings highlight the great potential of MoS 2 @NiCo 2 S 4 heterostructures for applying in research fields of advanced energy storage and conversion, presenting a promising strategy for next‐generation energy technologies.

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Small
Published
2026-09-09
DOI
https://doi.org/10.1002/smll.75665
Primary Topic
Advanced Battery Materials and Technologies
Type
article
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Electronic Structure Modulation of NiCo 2 S 4 Hollow Dodecahedrons by In Situ Compositing MoS 2 for Boosted Reaction Kinetics in Li–O 2 Batteries

Jingyu Lu, Ce Zhang, Jun Wang, Mingzhu Gao et al.
Small
Advanced Battery Materials and Technologies
article

Electronic Structure Modulation of NiCo 2 S 4 Hollow Dodecahedrons by In Situ Compositing MoS 2 for Boosted Reaction Kinetics in Li–O 2 Batteries

Jingyu Lu, Ce Zhang, Jun Wang, Mingzhu Gao, Muhammad Shoaib, Sana Shoukat, Zhen Li, Qiang Li, Hassan Raza, Liyao Han, Dongning Wan
article en

Abstract

ABSTRACT Rechargeable Li–O 2 batteries have attracted significant attention as a next‐generation energy storage technology because of their extremely high theoretical energy density. However, practical implementation remains hindered by limited energy density, poor cycling stability, pronounced parasitic reactions, and elevated overpotentials. Using zeolitic imidazolate frameworks (ZIFs) as templates, MoS 2 @NiCo 2 S 4 heterostructures were formed in situ via conversion to bimetallic layered double hydroxides, and the resulting hollow architecture was assembled from MoS 2 and NiCo 2 S 4 nanosheets. MoS 2 @NiCo 2 S 4 cathodes deliver remarkable discharge/charge specific capacities of 12412/11453 mAh g −1 at 100 mA g −1 and enhanced cycling stability over 208 cycles at 500 mA g −1 in Li–O 2 batteries. The improved performance of MoS 2 @NiCo 2 S 4 is mainly due to strong interactions between these two phases, with a hollow, porous structure that enhances regulation of reaction intermediates and enables precise control over electrochemical pathways during charging and discharging. Specifically, uniform formation and efficient decomposition of conformal Li 2 O 2 films were facilitated, and detrimental issues were effectively eased, resulting in improved reaction kinetics, enhanced capacity retention, and extended cycling stability. These findings highlight the great potential of MoS 2 @NiCo 2 S 4 heterostructures for applying in research fields of advanced energy storage and conversion, presenting a promising strategy for next‐generation energy technologies.

Small
Shandong University (CN), Hong Kong University of Science and Technology (HK), Harbin Institute of Technology (CN), Zhengzhou University (CN), Institute of New Materials (CN), University of Hong Kong (HK)
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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