NiO/Fe2VO4-based nanocomposite electrode
US-12469843-B2 · Nov 11, 2025 · US
US12586778B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12586778-B2 |
| Application number | US-202519352537-A |
| Country | US |
| Kind code | B2 |
| Filing date | Oct 8, 2025 |
| Priority date | Jan 10, 2023 |
| Publication date | Mar 24, 2026 |
| Grant date | Mar 24, 2026 |
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A nanocomposite electrode including a substrate, a binding compound, a conductive additive, and NiO/Fe 2 VO 4 nanoparticles. The NiO/Fe 2 VO 4 nanoparticles have a substantially spherical shape. A mixture of the binding compound, the conductive additive and the NiO/Fe 2 VO 4 nanoparticles, is at least partially coated on a first surface of the substrate. A method of making the NiO/Fe 2 VO 4 nanoparticles is described.
Opening claim text (preview).
The invention claimed is: 1 . A supercapacitor device, comprising: two symmetrically facing nanocomposite electrodes, wherein each nanocomposite electrode comprises: a substrate; a binding compound; a conductive additive; and NiO/Fe 2 VO 4 nanoparticles, wherein the NiO/Fe 2 VO 4 nanoparticles have a substantially spherical shape, wherein a mixture of the binding compound, the conductive additive and the NiO/Fe 2 VO 4 nanoparticles is at least partially coated on a first surface of the substrate, and wherein the first surfaces of the nanocomposite electrodes coated with the mixture face inwards; and wherein an anhydrous gel electrolyte is disposed between and is in contact with the first surfaces. 2 . The supercapacitor of claim 1 , wherein the NiO/Fe 2 VO 4 nanoparticles have an average diameter of 1-20 nanometers (nm). 3 . The supercapacitor of claim 1 , wherein the NiO/Fe 2 VO 4 nanoparticles are aggregated and have an average aggregate size of 1 to 50 micrometers (μm). 4 . The supercapacitor of claim 1 , wherein the NiO/Fe 2 VO 4 nanoparticles are aggregated and form an interconnected chain. 5 . The supercapacitor of claim 1 , wherein the NiO/Fe 2 VO 4 nanoparticles form an interconnected chain while dispersed in a matrix of the conductive additive. 6 . The supercapacitor of claim 1 , wherein the mixture comprises 5-10 wt. % of the binding compound, 70-90 wt. % of the conductive additive, and 1-20 wt. % of the NiO/Fe 2 VO 4 nanoparticles, based on a total weight of the mixture. 7 . The supercapacitor of claim 1 , wherein the mixture comprises 70-90 wt. % C, 0.5-5 wt. % V, 1-10 wt. % Fe, and 1-10 wt. % Ni based on the total weight of the mixture. 8 . The supercapacitor of claim 1 , wherein the elements V, C, Fe, and Ni are homogeneously distributed on the first surface of the substrate. 9 . The supercapacitor of claim 1 , wherein the substrate is made from at least one material selected from the group consisting of stainless steel, aluminum, nickel, copper, platinum, zinc, tungsten, and titanium. 10 . The supercapacitor of claim 1 , wherein the conductive additive is at least one selected from the group consisting of graphite, activated carbon, reduced graphene oxide, carbon nanotubes, carbon nanofibers, and carbon black. 11 . The supercapacitor of claim 1 , wherein the binding compound is at least one selected from the group consisting of polyvinylidene fluoride (PVDF) and N-methyl pyrrolidone (NMP). 12 . The supercapacitor of claim 1 , wherein the first surface of the substrate is hydrophilic. 13 . The supercapacitor of claim 1 , wherein the first surface of the substrate has a water contact angle less than 37°. 14 . The supercapacitor device of claim 1 , wherein the electrolyte is a glycerol/KOH gel electrolyte. 15 . The supercapacitor device of claim 1 , having a specific capacitance of 250-300 Farad per gram (F/g) at a current density of 1-5 ampere per gram (A/g). 16 . A battery, comprising 2-10 of the supercapacitor devices of claim 1 connected in parallel and/or series.
Polymeric materials, e.g. gel-type or solid-type · CPC title
Physical characteristics, e.g. porosity, surface area · CPC title
by coating on electrode collectors · CPC title
Organic polymers · CPC title
fluorinated polymers · CPC title
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