Biosorption of Ni(II) by Fig Male: Optimization and Modeling Using a Full Factorial Design

被引:5
作者
Madjene, F. [1 ]
Chergui, A. [2 ]
Trari, M. [3 ]
机构
[1] USTHB, Fac Engn Mech & Engn Proc, Lab Engn React, BP 32, Algiers, Algeria
[2] USTHB, Fac Chem, Lab Electrochem Corros Met & Inorgan Chem, BP 32, Algiers, Algeria
[3] USTHB, Fac Chem, Lab Storage & Valorizat Renewable Energies, BP 32, Algiers, Algeria
关键词
biomass; fig male; nickel; isotherm; factorial design; NICKEL(II); ADSORPTION; REMOVAL; IONS;
D O I
10.2175/106143016X14504669768859
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The fig male (FM) is successfully used as biosorbent for Ni2+ removal. The maximum removal efficiency (96.6%) is obtained at pH similar to 5 for a concentration of 1.70 mmol L-1 and catalyst dose of 5 g L-1 in less than 10 minutes. The Ni2+ uptake follows a pseudo-second-order kinetic, the rate constants increase with increasing temperature, and an activation energy of 55.48 kJ mol(-1) is found. The thermodynamic parameters indicate a spontaneous endothermic bisorption. The isotherm data are fitted by the Langmuir and Dubinin-Radushkevich models. The former indicates a maximum Ni2+ uptake of 0.459 mmol g(-1), which is higher than that ofmost biosorbents investigated to date. The FTIR spectra reveal the biosorption mechanism between Ni2+ and FM functional groups. An empirical modeling is performed by using a 2(3) full factorial design, and a regression equation for Ni2+ biosorption is determined. The biosorbent mass and pH are the most significant parameters affecting the Ni2+ biosorption.
引用
收藏
页码:540 / 547
页数:8
相关论文
共 28 条
[1]   Enhanced biosorption of nickel(II) ions by silica-gel-immobilized waste biomass: Biosorption characteristics in batch and dynamic flow mode [J].
Akar, Tamer ;
Kaynak, Zerrin ;
Ulusoy, Sefika ;
Yuvaci, Dilek ;
Onari, Guldem ;
Akar, Sibel Tunali .
JOURNAL OF HAZARDOUS MATERIALS, 2009, 163 (2-3) :1134-1141
[2]  
Akhnazarova S., 1982, EXPT OPTIMIZATION CH, P151
[3]   Equilibrium modelling of individual and simultaneous biosorption of chromium(VI) and nickel(II) onto dried activated sludge [J].
Aksu, Z ;
Açikel, Ü ;
Kabasakal, E ;
Tezer, S .
WATER RESEARCH, 2002, 36 (12) :3063-3073
[4]   Biosorption optimization of nickel removal from water using Punica granatum peel waste [J].
Bhatnagar, Amit ;
Minocha, A. K. .
COLLOIDS AND SURFACES B-BIOINTERFACES, 2010, 76 (02) :544-548
[5]   Nickel removal by biosorption onto medlar male flowers coupled with photocatalysis on the spinel ZnMn2O4 [J].
Chergui, Ahmed ;
Madjene, Farid ;
Trari, Mohamed ;
Khouider, Ali .
JOURNAL OF ENVIRONMENTAL HEALTH SCIENCE AND ENGINEERING, 2014, 12
[6]   Biosorption of Basic Green 4 from aqueous solution by Ananas comosus (pineapple) leaf powder [J].
Chowdhury, Shamik ;
Chakraborty, Sagnik ;
Saha, Papita .
COLLOIDS AND SURFACES B-BIOINTERFACES, 2011, 84 (02) :520-527
[7]   Heavy metals uptake from aqueous solutions using marine algae (Colpomenia sinuosa): kinetics and isotherms [J].
Cirik, Yeliz ;
Bekci, Zehra Molu ;
Buyukates, Yesim ;
Ak, Ilknur ;
Merdivan, Melek .
CHEMISTRY AND ECOLOGY, 2012, 28 (05) :469-480
[8]   Sun drying of figs: an experimental study [J].
Doymaz, I .
JOURNAL OF FOOD ENGINEERING, 2005, 71 (04) :403-407
[9]   Adsorption of anionic and cationic dyes on activated carbons with different surface chemistries [J].
Faria, PCC ;
Orfao, JJM ;
Pereira, MFR .
WATER RESEARCH, 2004, 38 (08) :2043-2052
[10]  
Faust S. D., 2003, ADSORPTION PROCESSES