KEYWORDS: Ti3C2TX, NiCo2S4, In-situ composite, 3D porous hydrogel, High performance, Zinc-ion hybrid supercapacitors
Ti3C2TX MXene, Cation electrochemical intercalation, 3D hydrogel, High energy density, Zinc-ion hybrid supercapacitors
Ti3C2TX MXene, Nitrogen doped, 3D hydrogel, High energy density, Zinc-ion hybrid supercapacitors
Ti3C2TX MXene, K+ intercalation, Graphene oxide, 3D porous hydrogel, High energy density, Zinc-ion hybrid supercapacitors
Ti3C2TX MXene, PPy intercalation, 3D porous hydrogel, high-energy density, Zinc-ion hybrid supercapacitors
Ti3C2TX MXene, PPy intercalation, graphene oxide, 3D porous hydrogel, high-energy density, Zinc-ion hybrid supercapacitors
MXenes, Ti3C2TX@PANI heterostructure, Intercalation process, 3D porous hydrogel, High energy density, Zinc ion capacitor
Ti3C2TX-based heterostructure, PPy intercalation, graphene oxide, 3D hydrogel, excellent rate capability, supercapacitors
Single atom catalysts, MXenes, CO2 reduction reaction, first-principles calculations, Surface terminations
Ti3C2TX MXene, Nitrogen doped, 3D hydrogel, high energy density, Zinc-ion hybrid supercapacitors
Fabrication of 3D Ti3C2TX@PPy-rGO Hydrogel Cathode for High-Energy Density Zinc-Ion Hybrid Supercapacitors
Ti3C2Tx, N, P Co-doping, 3D hydrogel, High energy density, Zinc-ion hybrid capacitor
Ti3C2TX MXene, Nitrogen doped, 3D hydrogel, High Energy density, Zinc-ion hybrid supercapacitors
Ti3C2TX MXene, Heteroatom co-doping, 3D hydrogels, High-energy density, Zinc-ion hybrid supercapacitors
Ti3C2TX, N, P Co-doping, 3D hydrogel, High energy density, Zinc-ion hybrid capacitor