Solid–gas synthesis of stable V 3 S 4 nanoflakes: electrochemical characterization as a Li-ion battery anode

Vanadium sulfides with lower oxidation states are expected to be an interesting choice for metal-ion batteries due to their high theoretical capacity and lower redox potential. Among these vanadium sulfides, V 3 S 4 having oxidation states of +2 and +3 has rarely been explored as an electrochemical...

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Veröffentlicht in:New journal of chemistry 2024-02, Vol.48 (8), p.3447-3455
Hauptverfasser: Madhuri, Balla Rekha, Adigilli, Harish Kumar, Karati, Anirudha, Joardar, Joydip, Vijay, R., Rao, Tata Narasinga, Sahoo, Ramkrishna
Format: Artikel
Sprache:eng
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Zusammenfassung:Vanadium sulfides with lower oxidation states are expected to be an interesting choice for metal-ion batteries due to their high theoretical capacity and lower redox potential. Among these vanadium sulfides, V 3 S 4 having oxidation states of +2 and +3 has rarely been explored as an electrochemical energy storage material. Herein, we demonstrate a unique synthesis strategy of obtaining V 3 S 4 nanoflakes from bulk V 2 O 5 via a two-step synthesis route where the hydrothermal treatment in the presence of ammonium sulfide modifies the bulk V 2 O 5 into a VO 2 nanosheet and the solid–gas reaction completely sulfurizes the chemically modified compound at 500 °C resulting in the formation of V 3 S 4 nanoflakes. The solid–gas reaction synthesis strategy under controlled pressure–temperature conditions using a chemically modified precursor results in the formation of V 3 S 4 at a relatively low temperature. Detailed physicochemical characterization indicates the phase purity and high air stability of the material. The electrochemical characterization indicates the anodic behavior of the as-prepared material as a Li-ion battery anode having a high reversible capacity of 781 mA h g −1 at 25 mA g −1 .
ISSN:1144-0546
1369-9261
DOI:10.1039/D3NJ03633B