TY - JOUR
T1 - Adsorptive Removal of Trichloroethylene in Water by Crop Residue Biochars Pyrolyzed at Contrasting Temperatures
T2 - Continuous Fixed-Bed Experiments
AU - Zhang, Ming
AU - Ahmad, Mahtab
AU - Al-Wabel, Mohammad I.
AU - Vithanage, Meththika
AU - Rajapaksha, Anushka Upamali
AU - Kim, Hyuck Soo
AU - Lee, Sang Soo
AU - Ok, Yong Sik
N1 - Publisher Copyright:
© 2015 Ming Zhang et al.
PY - 2015
Y1 - 2015
N2 - Biochar (BC) has attracted great attention as an alternative sorbent to activated carbon (AC). Objective of this study was to determine trichloroethylene (TCE) removal by soybean stover BC pyrolyzed at 300 (BC300) and 700°C (BC700) in continuous fixed-bed column. Columns packed with BC300, BC700, and AC reached breakthrough time in 1.1, 27.0, and 50.7 h, respectively. BC700 had higher TCE adsorption capacity than BC300 due to its higher surface area, nonpolarity, and aromaticity. The sorption capacities of AC (774.0 mg g-1) and BC700 (515.1 mg g-1) were 21.6 and 14.4 times higher than that of BC300 (35.9 mg g-1). The lower desorption rate of TCE from BC300 than BC700 and AC may be attributed to the strong binding/partition of TCE to the noncarbonized part of BC. Thomas model also adequately described the adsorption data indicating interphase mass transfer. Overall, AC showed best efficiency for removing TCE from water in column experiments. However, although sorption and desorption capabilities of BC700 were a little lower than AC, it is still a good alternative for AC to remove organic contaminants such as TCE from water due to its cost-effectiveness.
AB - Biochar (BC) has attracted great attention as an alternative sorbent to activated carbon (AC). Objective of this study was to determine trichloroethylene (TCE) removal by soybean stover BC pyrolyzed at 300 (BC300) and 700°C (BC700) in continuous fixed-bed column. Columns packed with BC300, BC700, and AC reached breakthrough time in 1.1, 27.0, and 50.7 h, respectively. BC700 had higher TCE adsorption capacity than BC300 due to its higher surface area, nonpolarity, and aromaticity. The sorption capacities of AC (774.0 mg g-1) and BC700 (515.1 mg g-1) were 21.6 and 14.4 times higher than that of BC300 (35.9 mg g-1). The lower desorption rate of TCE from BC300 than BC700 and AC may be attributed to the strong binding/partition of TCE to the noncarbonized part of BC. Thomas model also adequately described the adsorption data indicating interphase mass transfer. Overall, AC showed best efficiency for removing TCE from water in column experiments. However, although sorption and desorption capabilities of BC700 were a little lower than AC, it is still a good alternative for AC to remove organic contaminants such as TCE from water due to its cost-effectiveness.
UR - http://www.scopus.com/inward/record.url?scp=84944340018&partnerID=8YFLogxK
U2 - 10.1155/2015/647072
DO - 10.1155/2015/647072
M3 - Article
AN - SCOPUS:84944340018
SN - 2090-9063
VL - 2015
JO - Journal of Chemistry
JF - Journal of Chemistry
M1 - 647072
ER -