
Product Name
Name:P-doped Graphene Sponges (Foams,Aerogel)
Product Overview
Phosphorus doped graphene sponge is a three-dimensional porous material prepared by doping phosphorus atoms into the graphene structure. This material combines the excellent properties of graphene with the unique properties brought by phosphorus doping, showing broad application prospects in multiple fields such as electrochemical energy, wastewater treatment, gas sensing, etc.
Technical Parameter
Synthetic method: Hydrothermal
Shape: Cylinder
Size: d:~1cm;h:~2cm
Specific surface area:~ 96 m2·g-1
Density: ~45 mg·cm-3
Product Features
Three dimensional porous structure: Phosphorus doped graphene sponge has a stable three-dimensional network structure, providing a huge specific surface area and rich pore structure, which is conducive to the adsorption of gases and liquids and the occurrence of catalytic reactions.
Excellent conductivity: Phosphorus doping may improve the conductivity of graphene to a certain extent, making phosphorus doped graphene sponge potentially applicable in the field of electrochemistry.
Unique catalytic performance: Phosphorus doping may alter the chemical properties of graphene, enhance its catalytic activity, and enable it to exhibit better performance in certain catalytic reactions.
Application Fields
Electrochemical energy: Phosphorus doped graphene sponge can be used in electrochemical energy storage devices such as supercapacitors and lithium-ion batteries to improve energy density and cycling stability. Its high specific surface area and excellent conductivity contribute to the rapid transfer and storage of charges.
Wastewater treatment: Utilizing its high specific surface area and excellent adsorption performance, phosphorus doped graphene sponge can be used to adsorb and remove harmful substances such as heavy metal ions and organic pollutants in water, achieving wastewater treatment and purification.
Gas sensing: Phosphorus doped graphene sponge also has potential applications in the field of gas sensing. Its unique chemical properties and three-dimensional porous structure make it highly sensitive and selective towards specific gas molecules, making it suitable for producing high-performance gas sensors.
Related Information
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