Competitive adsorption of quinary heavy metal ions onto chestnut shell activated carbon

被引:0
|
作者
Khalla, Dounya [1 ]
Belguidoum, Karima [2 ]
Nacef, Mouna [1 ]
Boukour, Mouni [1 ]
Chelaghmia, Mohamed Lyamine [1 ]
Khelifi, Omar [1 ,3 ]
Selaimia, Radia [1 ]
Bengourna, Nadjette [1 ]
Affoune, Abed Mohamed [1 ]
Amira-Guebailia, Habiba [2 ]
机构
[1] Univ 8 Mai 1945 Guelma, LAIGM, BP 401, Guelma 24000, Algeria
[2] Univ 8 Mai 1945, LCA, BP 401, Guelma 24000, Algeria
[3] Univ Ahmed DraiaAdrar, HER, FST, Adrar 01000, Algeria
关键词
Chestnut shell; Heavy metals; Competition; Adsorption; DFT; Quinary mixture; AQUEOUS-SOLUTION; CHEMICAL ACTIVATION; COPPER; ZINC; REMOVAL; MEDIA; LEAD; CD; NI; CU;
D O I
10.1016/j.matchemphys.2024.129646
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
For several decades, heavy metals have been a source of environmental pollution and the scientific community is continually asked for facing this threat. This study investigated the performance of an activated carbon made from chestnut shell (CNS-AC) in adsorbing Cd(II), Cr(VI), Ni(II), Cu(II), and Zn(II) in single and quinary-metal systems. The CNS-AC was characterized using FT -IR, TGA/DTG, FEG-SEM, EDX, and BET. Experimental results revealed that the adsorption follows the pseudo -second order kinetics, both in single and quinary systems. The equilibrium results reflect the Langmuir equilibrium model, with maximum adsorption capacities (mg.g -( 1 )) varying from 21.34 for Cd(II) to 73.16 for Zn(II); in single -metal systems, and from 9.80 for Cd(II) to 33.33 for Cu (II); in the quinary-metal systems. The overall maximum adsorption capacity in quinary-metal solution was of 113.22 mg g (1 ) , higher than q m for each single -metal system. Furthermore, it was found that Cd(II) and Zn(II) pollution abatement to the standard limits was achieved in only one stage while two stages were enough to achieve the related pollution abatement for the other metals. A computational investigation was conducted using the Gaussian 09 and Density Functional Theory (DFT) methods, assuming the generation of organometallic complexes between the functionalized activated carbon and the metal ions. CNS-AC ' s carboxyl and amine functional groups seemed to be involved in the metal ions adsorption. The calculated bonding energies between the adsorbent and metal ions decreased in the following order Cu(II) < Cr(VI) < Ni(II) < Zn(II) < Cd(II). Correspondingly, experimental results revealed an actual competition between heavy metals for adsorption sites where Zn(II), Ni(II), and Cd(II) removal was hindered by the other metal ions occurrence while Cr(VI) and Cu(II) removal rates have remained broadly unchanged. The new insights brought by the theoretical study combined to the experimental investigation highlights the CNS-AC efficacy as adsorbent for Cd(II), Cr(VI), Ni(II), Cu(II), and Zn(II) removal.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] ADSORPTION OF HEAVY-METAL IONS ON ACTIVATED CARBON .6. ADSORPTION OF ARSENIC(III) AND ARSENIC(V) ON ACTIVATED CARBON
    KAMEGAWA, K
    YOSHIDA, H
    ARITA, S
    [J]. NIPPON KAGAKU KAISHI, 1979, (10) : 1365 - 1370
  • [32] Adsorption, Desorption and Competitive Adsorption of Heavy Metal Ions from Aqueous Solution onto GMZ01 Bentonite
    Ye, W. M.
    He, Yong
    Chen, Y. G.
    Chen, Bao
    Cui, Y. J.
    [J]. ENGINEERING GEOLOGY FOR SOCIETY AND TERRITORY, VOL 6: APPLIED GEOLOGY FOR MAJOR ENGINEERING PROJECTS, 2015, : 533 - 536
  • [33] Competitive adsorption of phenol and heavy metal ions onto titanium dioxide (Dugussa P25)
    Bekkouche, Salim
    Baup, Stephane
    Bouhelassa, Mohamed
    Molina-Boisseau, Sonia
    Petrier, Christian
    [J]. DESALINATION AND WATER TREATMENT, 2012, 37 (1-3) : 364 - 372
  • [34] Removal of toxic dyes from aqueous solutions by adsorption onto a novel activated carbon prepared from chestnut shell
    Zhang, Mingyang
    Liu, Xinzhe
    Li, Wenda
    Tan, Zhuowei
    Wang, Qian
    Zhang, Linhua
    [J]. DESALINATION AND WATER TREATMENT, 2021, 222 : 246 - 258
  • [35] Adsorption of heavy metal ions with carbon nanotubes
    Stafiej, Anna
    Pyrzynska, Krystyna
    [J]. SEPARATION AND PURIFICATION TECHNOLOGY, 2007, 58 (01) : 49 - 52
  • [36] Adsorption mechanism of metal ions on activated carbon
    Ayaka Kuroki
    Megumi Hiroto
    Yoshitomo Urushihara
    Toshihide Horikawa
    Ken-Ichiro Sotowa
    Jesús Rafael Alcántara Avila
    [J]. Adsorption, 2019, 25 : 1251 - 1258
  • [37] Adsorption mechanism of metal ions on activated carbon
    Kuroki, Ayaka
    Hiroto, Megumi
    Urushihara, Yoshitomo
    Horikawa, Toshihide
    Sotowa, Ken-Ichiro
    Avila, Jesus Rafael Alcantara
    [J]. ADSORPTION-JOURNAL OF THE INTERNATIONAL ADSORPTION SOCIETY, 2019, 25 (06): : 1251 - 1258
  • [38] Heavy metal ions adsorption from dairy industrial wastewater using activated carbon from milk bush kernel shell
    Afolabi, Tinuade J.
    Alade, Abass O.
    Jimoh, Monsurat O.
    Fashola, Isaiah O.
    [J]. DESALINATION AND WATER TREATMENT, 2016, 57 (31) : 14565 - 14577
  • [39] THE ADSORPTION OF HEAVY-METALS ONTO HYDROUS ACTIVATED CARBON
    CORAPCIOGLU, MO
    HUANG, CP
    [J]. WATER RESEARCH, 1987, 21 (09) : 1031 - 1044
  • [40] Competitive Adsorption of Cr (VI) and Ni (II) onto Coconut Shell Activated Carbon in Single and Binary Systems
    Wu, Yunhai
    Yilihan, Palizhati
    Cao, Julin
    Jin, Yanping
    [J]. WATER AIR AND SOIL POLLUTION, 2013, 224 (09):