Development of Inverse-Opal-Structured Charge-Deficient Co 9 S 8 @nitrogen-Doped-Carbon to Catalytically Enable High Energy and High Power for the two-Electron Transfer I + /I - Electrode

The iodine (I) electrode involving two-electron transfer chemistry by converting between I and I , has the potential to deliver theoretically doubled capacity and higher working voltage platforms, thus achieving higher energy density. However, owing to the slow kinetics of the cascade two-electron t...

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Veröffentlicht in:Advanced materials (Weinheim) 2024-05, Vol.36 (18), p.e2312246
Hauptverfasser: Hu, Tao, Zhao, Yuanyuan, Yang, Yihan, Lv, Haiming, Zhong, Rong, Ding, Feng, Mo, Funian, Hu, Haibo, Zhi, Chunyi, Liang, Guojin
Format: Artikel
Sprache:eng
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Zusammenfassung:The iodine (I) electrode involving two-electron transfer chemistry by converting between I and I , has the potential to deliver theoretically doubled capacity and higher working voltage platforms, thus achieving higher energy density. However, owing to the slow kinetics of the cascade two-electron transfer reactions, the system suffers from large overpotentials and low power density, especially at high working currents and low temperatures. Here, an inverse-opal-structured Co S @nitrogen-doped-carbon (NC) catalyst with unique charge-deficient states was developed to promote the reaction kinetics of the I /I electrode. The charge-deficient Co S @NC catalyst not only enabled strong physicochemical adsorption with the iodine species but also significantly reduced the activation energy and interfacial charge transfer resistance of the cascade I /I /I conversion reaction. Consequently, the prototypical Zn‖I /I /I battery equipped with the Co S @NC catalyst could deliver a high energy density of 554 Wh kg , where a power density of 1526 W kg at a high current of 5 A g and a stable cycle life of 5000 cycles at 30°C could be achieved. Moreover, at a subzero temperature of -30 °C, the battery could exhibit enhanced kinetics and a high power density of 1514 W kg , high energy density of 485 Wh kg , and stable cycle life of 2000 cycles. This article is protected by copyright. All rights reserved.
ISSN:0935-9648
1521-4095
DOI:10.1002/adma.202312246