Arsenic removal using a biopolymer chitosan sorbent

被引:72
作者
Chen, CC
Chung, YC [1 ]
机构
[1] Chiba Inst Technol, Dept Biol Sci & Technol, Taipei 115, Taiwan
[2] Natl Taichung Nursing Coll, Dept Gen Studies, Taichung, Taiwan
来源
JOURNAL OF ENVIRONMENTAL SCIENCE AND HEALTH PART A-TOXIC/HAZARDOUS SUBSTANCES & ENVIRONMENTAL ENGINEERING | 2006年 / 41卷 / 04期
关键词
arsenic; chitosan; adsorption; sorbent;
D O I
10.1080/10934520600575044
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
An agricultural waste, chitosan, was converted to bead form to evaluate the feasibility of its use to remove As(III) and As(V) from water in both batch and continuous operations. In batch tests, the effect of pH, temperature, coexisting ions, and arsenic concentrations were studied. Studies of kinetic adsorption, recovery of arsenic by desorption solution, and reuse of chitosan beads were also carried out. Additionally, wastewater containing arsenic discharged from the manufacturing of GaAs supports was treated in a continuous operation. Results indicated that chitosan beads favored the adsorption of As(V), but not As(III). The optimal pH value for As(III) and As(V) removal was near 5. The insignificant difference for As(V) and As(III) adsorption by chitosan beads was found in the 25-40 degrees C range. Ion coexistence below 50 mg/L did not affect arsenic removal. The optimal desorption solution for the arsenic recovery was H2SO4 with a 71% efficiency for As(V), which was amenable to efficient regeneration for multiple reuse (about 15 times). In continuous tests, the chitosan bead column exhibited excellent arsenic removal from actual wastewater without any pretreatment. The results provide strong evidence of the promise the application of chitosan bead has for arsenic removal.
引用
收藏
页码:645 / 658
页数:14
相关论文
共 25 条
[1]   Effects of organic acids on the adsorption of heavy metal ions by chitosan flakes [J].
Bassi, R ;
Prasher, SO ;
Simpson, BK .
JOURNAL OF ENVIRONMENTAL SCIENCE AND HEALTH PART A-TOXIC/HAZARDOUS SUBSTANCES & ENVIRONMENTAL ENGINEERING, 1999, 34 (02) :289-294
[2]   Removal of arsenic from groundwater using low cost ferruginous manganese ore [J].
Chakravarty, S ;
Dureja, V ;
Bhattacharyya, G ;
Maity, S ;
Bhattacharjee, S .
WATER RESEARCH, 2002, 36 (03) :625-632
[3]   Arsenic removal using a polymeric/inorganic hybrid sorbent [J].
DeMarco, MJ ;
Sengupta, AK ;
Greenleaf, JE .
WATER RESEARCH, 2003, 37 (01) :164-176
[4]   Sorption on natural solids for arsenic removal [J].
Elizalde-González, MP ;
Mattusch, J ;
Einicke, WD ;
Wennrich, R .
CHEMICAL ENGINEERING JOURNAL, 2001, 81 (1-3) :187-195
[5]   Arsenic removal from drinking water by flocculation and microfiltration [J].
Han, BB ;
Runnells, T ;
Zimbron, J ;
Wickramasinghe, R .
DESALINATION, 2002, 145 (1-3) :293-298
[6]   Adsorption of Cu(II) and Ni(II) by pelletized biopolymer [J].
Huang, CP ;
Chung, YC ;
Liou, MR .
JOURNAL OF HAZARDOUS MATERIALS, 1996, 45 (2-3) :265-277
[7]  
IARC Monographs on the Evaluation of Carcinogenic Risk of Chemicals to Humans, 1980, IARC MON EV CARC RIS, V23
[8]   Physicochemical characterization of α-chitin, β-chitin, and γ-chitin separated from natural resources [J].
Jang, MK ;
Kong, BG ;
Jeong, YI ;
Lee, CH ;
Nah, JW .
JOURNAL OF POLYMER SCIENCE PART A-POLYMER CHEMISTRY, 2004, 42 (14) :3423-3432
[9]   An overview of arsenic removal processes [J].
Kartinen, EO ;
Martin, CJ .
DESALINATION, 1995, 103 (1-2) :79-88
[10]   Removal of arsenic from contaminated water sources by sorption onto iron-oxide-coated polymeric materials [J].
Katsoyiannis, IA ;
Zouboulis, AI .
WATER RESEARCH, 2002, 36 (20) :5141-5155