000 02036nam a2200253Ia 4500
003 MX-MdCICY
005 20250625162448.0
040 _cCICY
090 _aB-20433
245 1 0 _aThermochemical method for controlling pore structure to enhance hydrogen storage capacity of biochar
490 0 _vInternational Journal of Hydrogen Energy, 48, p.21799-21813, 2023
520 3 _aDeveloping new carbon-based hydrogen storage materials can significantly promote solid-state hydrogen storage technology. Biochar with high hydrogen storage capacity can be prepared by KOH melt activation, which has a high proportion of micropores (96.56 percent)compared with the porous carbon in the existing literature. Its specific surface area and pore volume are 2801.88 m2/g and 1.44 cm3/g, respectively. The size of the nanopores is affected by the activation ratio, but the temperature has little effect at the low activation ratio. SEM results show that the KOH activation process gradually shifts from the biochar's inside to the outside. A low KOH/char ratio (less than 2:1)can promote the formation of small aromatic rings. Due to its high specific surface area and microporosity, the absolute adsorption capacity of hydrogen in biochar is 2.53 wt percent at ?196 °C and 1 bar, rising to 5.32 wt percent at 50 bar. The hydrogen adsorption process conforms to the Langmuir model. Microporous, mesoporous, and macroporous exhibit different hydrogen adsorption characteristics in various pressure ranges. However, ultramicroporous (<0.7 nm)always plays a decisive role in the hydrogen storage of biochar.
650 1 4 _aBIOCHAR
650 1 4 _aACTIVATION
650 1 4 _aPORE STRUCTURE
700 1 2 _aDeng, L.
700 1 2 _aZhao, Y.
700 1 2 _aSun, S.
700 1 2 _aFeng, D.
700 1 2 _aZhang, W.
856 4 0 _uhttps://drive.google.com/file/d/1T0CpBXqsiLLhJkxF6FPd9U-4As1ghbZs/view?usp=drivesdk
_zPara ver el documento ingresa a Google con tu cuenta: @cicy.edu.mx
942 _2Loc
_cREF1
008 250602s9999 xx |||||s2 |||| ||und|d
999 _c54525
_d54525