[1] |
Blanco A A G, de Oliveira J C A, López R, et al. A study of the pore size distribution for activated carbon monoliths and their relationship with the storage of methane and hydrogen[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2010,357 (1/3):74-83
|
[2] |
李桂芬,万建新,黄向前,等. 多壁碳纳米管与活性炭吸附中分子毒素的比较[J]. 生物医学工程学杂志, 2011, 28 (4):758-762
|
[3] |
张婧怡,石宝友,解建坤,等. 活性炭物化性质对吸附天然水体中有机污染物的影响[J]. 环境科学, 2011,32 (2):494-452
|
[4] |
Wu X, Wu D, Fu R, et al. Preparation of carbon aerogels with different pore structures and their fixed bed adsorption properties for dye removal[J]. Dyes and Pigments, 2012, 95 (3):689-694
|
[5] |
Castro-Muñiz A, Suárez-García F, Martínez-Alonso A, et al. Activated carbon fibers with a high content of surface functional groups by phosphoric acid activation of PPTA[J]. Journal of Colloid and Interface Science, 2011, 361 (1):307-315
|
[6] |
Hashisho Z, Rood M J, Barot S, et al. Role of functional groups on the microwave attenuation and electric resistivity of activated carbon fiber cloth[J]. Carbon, 2009, 47 (7):1814-1823
|
[7] |
Li N, Almarri M, Ma X L, et al. The role of surface oxygen-containing functional groups in liquid-phase adsorptive denitrogenation by activated carbon[J]. New Carbon Materials, 2011, 26 (6):470-478
|
[8] |
刘雪梅,蒋剑春,孙康,等. 热解活化法制备微孔发达椰壳活性炭及其吸附性能研究[J]. 林产化学与工业,2012,32 (2):126-130
|
[9] |
Depci T, Kul A R, nal Y. Competitive adsorption of lead and zinc from aqueous solution on activated carbon prepared from Van apple pulp: Study in single-- and multi--solute systems[J]. Chemical Engineering Journal, 2012,200-202:224-236
|
[10] |
徐涛,刘晓勤, 磷酸活化法制备花生壳活性炭工艺[J]. 化学工程, 2009, 37 (11): 69-74
|
[11] |
|
[12] |
Zuo S, Yang J, Liu J, et al. Significance of the carbonization of volatile pyrolytic products on the properties of activated carbons from phosphoric acid activation of lignocellulosic material[J]. Fuel Processing Technology, 2009, 90 (7/8): 994-1001
|
[13] |
Du T, Kang S, Zhang J, et al. Yield and physiological responses of cotton to partial root-zone irrigation in the oasis field of northwest China[J]. Agricultural Water Management, 2006, 84 (1/2): 41-52
|
[14] |
Li N, Almarri M, Ma X l, et al. The role of surface oxygen--containing functional groups in liquid--phase adsorptive denitrogenation by activated carbon[J]. Carbon, 2012, 50 (5):2063-2064
|
[15] |
Moriyama K, Machida M, Akikawa M, et al. Influence of surface acidic functional groups on activated carbons for adsorption and desorption kinetics of phenol from aqueous solutions[J]. Carbon, 2008, 46 (7): 1110-1111
|
[16] |
Dolas H, Sahin O, Saka C, et al. A new method on producing high surface area activated carbon: The effect of salt on the surface area and the pore size distribution of activated carbon prepared from pistachio shell[J]. Chemical Engineering Journal, 2011, 166 (1):191-197
|
[17] |
Jensen B, Kuznetsova T, Kvamme B, et al. Molecular dynamics study of selective adsorption of PCB on activated carbon[J]. Fluid Phase Equilibria, 2011, 307 (1):58-65
|
[18] |
Carrott P J M, Ribeiro Carrott M M L, Suhas, Comparison of the Dubinin-Radushkevich and Quenched Solid Density Functional Theory approaches for the characterisation of narrow microporosity in activated carbons obtained by chemical activation with KOH or NaOH of Kraft and hydrolytic lignins[J]. Carbon, 2010, 48 (14): 4162-4169
|
[19] |
Altenor S, Carene B, Emmanuel E, et al. Adsorption studies of methylene blue and phenol onto vetiver roots activated carbon prepared by chemical activation[J]. Journal of Hazardous Materials, 2009, 165 (1/3):1029-1039
|
[20] |
Mezohegyi G, van der Zee F P, Font J, et al. Towards advanced aqueous dye removal processes: A short review on the versatile role of activated carbon[J]. Journal of Environmental Management, 2012, 102:148-164
|
[21] |
Demiral H, Demiral, Karabacakoğlu B, et al. Production of activated carbon from olive bagasse by physical activation[J]. Chemical Engineering Research and Design, 2011, 89 (2):206-213
|
[22] |
Sun Y, Yue Q, Gao B, et al. Comparative study on characterization and adsorption properties of activated carbons with H3PO4 and H4P2O7 activation employing Cyperus alternifolius as precursor[J]. Chemical Engineering Journal, 2012, 182:790-797
|
[23] |
陈再明, 方远, 徐义亮, 等.水稻秸秆生物碳对重金属 Pb2+的吸附作用及影响因素[J]. 环境科学学报, 2012, 32(4): 769-776
|
[24] |
蒋新元, 罗辉, 胡迅, 等. 竹材加工剩余物制备竹活性炭及其对Pb2+的吸附性能[J].环境污染与防治, 2008,30(12):32-35
|
[25] |
Xu T, Liu X Q. Peanut shell activated carbon: Characterization, sunface modification and adsorption of Pb2+from aqueous solution[J]. Chinese Journal of Chemical Engineering, 2008, 16(3):401-406
|
[26] |
安增莉, 侯艳伟, 蔡超, 等. 水稻秸秆生物炭对Pb(Ⅱ)的吸附特性[J]. 环境化学, 2011, 30(11):1851-1857
|