Transition metal nitrides: Unveiling active site engineering in bifunctional materials for next-generation energy storage

Transition metal nitrides (TMNs) hold great promise for use as electrodes in advanced electrochemical energy storage, thanks to their superior electrical conductivity, outstanding chemical stability, and favorable catalytic performance. Despite growing research interest, a systematic overview exploring the role of TMNs in supercapacitors (SCs) and lithium‑sulfur (Li S) batteries remains scarce. This review comprehensively summarizes recent progress in the design and application of TMNs for high-performance SCs and Li S batteries. We first categorize typical structural configurations and synthetic methods of TMNs. Then, we discuss in detail the electrochemical functions and the functionality of key TMNs (MₓN, where M = V, Ti, Mo, Nb, W) in these two energy storage systems, with emphasis on charge storage mechanisms and material engineering strategies, particularly active site engineering. Notably, while supercapacitors rely on pseudocapacitive surface processes and Li S batteries depend on adsorption-catalysis bifunctional sites, reflecting distinct energy storage mechanisms and active centers, TMNs serve as “electronic superhighways” in both systems, efficiently overcoming their respective conductivity limitations. To conclude, the key challenges and future opportunities for TMN-based electrodes are outlined. This work is devoted to establishing a fundamental framework and practical guidelines for the rational development of TMN materials toward next-generation energy storage technologies with high efficiency, long-term stability, and scalability.

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Publication Details

Journal
Journal of Energy Storage
Published
2026-10-05
DOI
https://doi.org/10.1016/j.est.2026.125038
Primary Topic
Supercapacitor Materials and Fabrication
Type
article
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article

Transition metal nitrides: Unveiling active site engineering in bifunctional materials for next-generation energy storage

Saiwei Luan, Chunjian Xue, Hao Kuang, Linli Wang et al.
Journal of Energy Storage
Supercapacitor Materials and Fabrication
article

Transition metal nitrides: Unveiling active site engineering in bifunctional materials for next-generation energy storage

Saiwei Luan, Chunjian Xue, Hao Kuang, Linli Wang, Liming Lian, Shusen Hou
article en

Abstract

Transition metal nitrides (TMNs) hold great promise for use as electrodes in advanced electrochemical energy storage, thanks to their superior electrical conductivity, outstanding chemical stability, and favorable catalytic performance. Despite growing research interest, a systematic overview exploring the role of TMNs in supercapacitors (SCs) and lithium‑sulfur (Li S) batteries remains scarce. This review comprehensively summarizes recent progress in the design and application of TMNs for high-performance SCs and Li S batteries. We first categorize typical structural configurations and synthetic methods of TMNs. Then, we discuss in detail the electrochemical functions and the functionality of key TMNs (MₓN, where M = V, Ti, Mo, Nb, W) in these two energy storage systems, with emphasis on charge storage mechanisms and material engineering strategies, particularly active site engineering. Notably, while supercapacitors rely on pseudocapacitive surface processes and Li S batteries depend on adsorption-catalysis bifunctional sites, reflecting distinct energy storage mechanisms and active centers, TMNs serve as “electronic superhighways” in both systems, efficiently overcoming their respective conductivity limitations. To conclude, the key challenges and future opportunities for TMN-based electrodes are outlined. This work is devoted to establishing a fundamental framework and practical guidelines for the rational development of TMN materials toward next-generation energy storage technologies with high efficiency, long-term stability, and scalability.

Journal of Energy StorageVol. 182
Chinese Academy of Sciences (CN), Huaibei Mining (China) (CN), Shenzhen Institutes of Advanced Technology (CN), Xinxiang University (CN), Shenzhen Institute of Advanced Electronic Materials (CN)
Openalex Percentile: Top 31%
Supercapacitor Materials and Fabrication
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