Porous Graphitized Carbon for Adsorptive Removal of Benzene and the Electrothermal Regeneration
Author(s) -
Jinjun Li,
Renjie Lu,
Baojuan Dou,
Chunyan Ma,
Qiuhong Hu,
Yan Liang,
Feng Wu,
Shi Zhang Qiao,
Zhengping Hao
Publication year - 2012
Publication title -
environmental science and technology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.851
H-Index - 397
eISSN - 1520-5851
pISSN - 0013-936X
DOI - 10.1021/es303069j
Subject(s) - adsorption , microporous material , mesoporous material , benzene , chemical engineering , resorcinol , carbon fibers , desorption , activated carbon , catalysis , materials science , porosity , chemistry , inorganic chemistry , organic chemistry , composite material , composite number , engineering
Graphitized carbons with mesoporous and macroporous structures were synthesized by a facile template-catalysis procedure using resorcinol and formaldehyde as carbon precursors and particulate hydrated metal oxides as both template and catalyst precursors. The materials were used as novel adsorbents for low-concentration benzene vapor. Furthermore, on the basis of the good electrical conductivities associated with the graphitized structures, an electrothermal desorption technique, which involved passing electric currents through the adsorbents to generate Joule heat, was employed to regenerate the saturated adsorbents and produce enriched benzene vapors. In comparison to microporous activated carbon, the porous graphitized carbons could afford a much quicker and more efficient regeneration by electrothermal desorption technique due to their enhanced conductivity and larger pore sizes. In addition, the concentration of the desorbed organics could be controlled by adjusting the applied voltages, which might be interesting for practical secondary treatment. It is promising that the joint utilization of porous graphitized carbon adsorbents and electrothermal desorption technique might develop effective and energy-saving processes for VOCs removal.
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