Home-made chemical vapor deposition-based synthesis of binder-free nanostructured magnesium-molybdenum-sulfide electrode materials for supercapacitor application

Molybdenum disulfides (MoS2) is considered as promising electrode materials (E-M) for high electrochemical performance (ECP) of lithium-ion batteries and supercapacitors due to their layered nanostructures. Herein, MoS2, MgS and hetrostructure MgS/MoS2 E-Ms comprising of nano-particles/sheets/needle...

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Veröffentlicht in:The Journal of physics and chemistry of solids 2024-09, Vol.192, p.112093, Article 112093
Hauptverfasser: Raza, A., Farid, A., Rasheed, A., Yousaf, Misbah, Khan, I.A., Mohammed, Khaled M.H., Ghanem, Mohamed A.
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Sprache:eng
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Zusammenfassung:Molybdenum disulfides (MoS2) is considered as promising electrode materials (E-M) for high electrochemical performance (ECP) of lithium-ion batteries and supercapacitors due to their layered nanostructures. Herein, MoS2, MgS and hetrostructure MgS/MoS2 E-Ms comprising of nano-particles/sheets/needles like structures are synthesized on Nickel foam (Ni–F) by a simple home-made chemical vapor deposition (CVD) technique. The XRD analysis confirmed the formation of MoS2, MgS and MgS/MoS2 polycrystalline E-Ms growing along different directions. The FESEM analysis is confirmed that the addition of MgS layer over the surface of MoS2 change the surafce morphology from nano-particles to nano-needles. The change in structural and microstructural features is indicated the appearance of defects, micro-strain and dislocations density which are fruitful for excellent ECP. The cyclic voltammetry analysis is indicated the pseudocapacitive nature of the synthesized E-Ms. The maximum specific capacitance values for MoS2/Ni–F, MgS/Ni–F and MgS/MoS2/Ni–F E-Ms are 1273, 1688 and 3934 F/g at 1 A/g respectively. Moreover, the addition of MgS layer over MoS2/Ni–F is revealed the excellent cyclic stability of 98.76 % at current density of 10 A/g after 4000 cycles, energy density values are ranged from 79 to 136 W h/kg with homologous power density of 250–2500 W/kg and very small charge transfer resistance. The simulations of Power's Law and Dunn's model is confirmed that the excellent ECP is due to both capacitive and diffusive controlled contributions of heterostructured MgS/MoS2/Ni–F E-Ms. Additionally, MgS/MoS2/Ni–F E-Ms have both battery and pseudocapacitive nature due to unique nano-needles like morphology. The excellent electrochemical properties of MgS/MoS2/Ni–F E-Ms substantiate their potential applications in portable energy storage devices. [Display omitted] •Synthesis of binder-free MgS/MoS2 as electrode materials (EMs).•Deposition of MgS layer on MoS2 results in MgS/MoS2 EMs.•Nanostructure of MgS/MoS2 is changed from nano-rods to nano-needles.•Specific capacitance, energy and power densities are found to be 3934-2285 F/g, 136-79 W h/kg and 250–2500 W/kg respectively.•Cyclic stability of synthesied EMs is 98.76 % even after 4000 cycles at 10 A/g and suitable for batetry and supercapacitors.
ISSN:0022-3697
1879-2553
DOI:10.1016/j.jpcs.2024.112093