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Novel strategy for high-performance supercapacitors through the polyvinylpyrrolidone (PVP)-assisted in situ growth of FeS 2 .

Muhammad Alief IrhamOktaviardi Bityasmawan AbdillahDarul Roni RodiansyahFakhrian Hanif Tejo BaskoroHaerul FahmiTakashi OgiFerry Iskandar
Published in: Dalton transactions (Cambridge, England : 2003) (2023)
Iron disulfide or pyrite (FeS 2 ) has emerged as a promising transition metal sulfide-based supercapacitor owing to its abundance and superb electrochemical properties. However, FeS 2 still faces major hurdles in realizing its full potential, such as a low energy density and poor conductivity. In this study, we report a high-performance FeS 2 supercapacitor synthesized by a direct one-step process with the help of polyvinylpyrrolidone (PVP). The incorporation of PVP on the active materials prevented dendritic expansion and acted as a binding for solving the current FeS 2 limitations, while facilitating a one-step synthesis process. Additionally, PVP could enhance the electrochemical performance by enabling faster ion movement. An FeS 2 /PVP nanocomposite was successfully synthesized, and used in an asymmetric supercapacitor, demonstrating a high specific capacity of 735 F g -1 (at 2 A g -1 ) and a high energy density of 69.74 W h kg -1 (at 911 W kg -1 ). The superior electrochemical properties of FeS 2 /PVP were enabled by the lower charge-carrier resistance and better surface passivation by PVP, as demonstrated by both electrochemical experiments and first-principles calculations. The high-performance supercapacitor of FeS 2 presented in this study synthesized in situ by an efficient method provides a new insight into novel supercapacitor electrodes.
Keyphrases
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