Engineering Heterointerface to Synergistically Regulate Kinetics and Stress of Copper–Cobalt Selenide toward Reversible Magnesium/Lithium Hybrid Batteries

Metal chalcogenide-based cathodes are crucial for the development of rechargeable magnesium batteries, yet the strong electrostatic interactions of Mg2 + result in slow ion transport and high polarization. The Mg2 +/Li+ hybrid battery holds promise for enhancing the energy storage capability. Herein...

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Veröffentlicht in:Nano letters 2024-11, Vol.24 (47), p.15050-15059
Hauptverfasser: Wang, Wenlong, Tian, Miao, Wang, Zhitao, Ma, Heping, Du, Yibo, Si, Wenhui, Zhang, Wenming, Yang, Hui Ying, Chen, Song
Format: Artikel
Sprache:eng
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Zusammenfassung:Metal chalcogenide-based cathodes are crucial for the development of rechargeable magnesium batteries, yet the strong electrostatic interactions of Mg2 + result in slow ion transport and high polarization. The Mg2 +/Li+ hybrid battery holds promise for enhancing the energy storage capability. Herein, we establish a system that utilizes (Co,Cu)­Se2/CoSe x heterostructure grown on carbon cloth as the cathode and APC-LiCl as a dual-salt electrolyte to achieve high reversible capacity, enhanced cyclic stability, and impressive rate performance. First-principles calculations and kinetic analyses are employed to uncover that constructing the heterointerface stimulates the formation of an intrinsic electric field and high-density electron flows, thereby accelerating charge transfer and ion diffusion processes. Finite element simulations further demonstrate that the heterostructure effectively alleviates stresses associated with magnesiation/lithiation to enhance the structural integrity of the material. Moreover, the multistep reaction unveils a stepwise structural transformation pathway. This study initiates a new chapter in designing heterointerface strategies for advanced energy storage devices.
ISSN:1530-6984
1530-6992
1530-6992
DOI:10.1021/acs.nanolett.4c04123