Carbon-based porous material and preparation method and use thereof
The present disclosure relates to a carbon-based porous material microscopically exhibiting a three-dimensional cross-linked net-like hierarchical pore structures with micropores nested in mesopores that are in turn nested in macropores. Such material provides for accelerated adsorption and desorption rates and lower desorption temperatures for recovery of organic gas molecules.
1. A carbon-based porous material, having a structure of 3D hierarchical porous network microscopically, and having 500-2500 m 2 /g specific surface area and a water contact angle greater than 90°.
2. The carbon-based porous material according to claim 1 , wherein the content of macropores in the carbon-based porous material is 1-10%; the content of micropores is 20-65%, and/or the content of mesopores in the carbon-based porous material is 30-70%.
3. The carbon-based porous material according to claim 1 , wherein the specific surface area of the carbon-based porous material is 500-2300 m 2 /g; and/or the water contact angle of the carbon-based porous material is greater than 110°.
4. The carbon-based porous material according to claim 1 , wherein the specific surface area of the carbon-based porous material is 500-2300 m 2 /g, the content of mesopores is 30-70%, the carbon-based porous material exhibits a structure of 3D hierarchical porous network microscopically, the pore size of mesopores is 2-60 nm, and the most probable pore size is 1.7-3.8 nm, and the water contact angle of the carbon-based porous material is greater than or equal to 120.
5. The carbon-based porous material according to claim 1 , wherein the BJH adsorption average pore size of the carbon-based porous material is 1-7 nm, the most probable pore size is 1.7-3.8 nm, the ball-pan hardness number of the carbon-based porous material is not lower than 90%, and/or the crushing strength is not lower than 90 N/cm 2 .
6. The carbon-based porous material according to claim 1 , wherein the butane adsorption activity of the carbon-based porous material at normal temperature is greater than 15 g/100 g, the butane desorption efficiency of the carbon-based porous material is not lower than 55%, and/or the adsorption heat of the carbon-based porous material is not higher than 85° C., wherein the butane adsorption activity at normal temperature is measured with the test method defined in GB/T20449-2006.