Bulletin of the Chinese Ceramic Society, Volume. 41, Issue 10, 3501(2022)

Research Progress on Heavy Metal Ions Immobilized by Geopolymers

CHEN Shuai1... WANG Qingping1, WANG Yanjun2, WU Qiugang2, ZHAO Heng2, CHEN Xiaoyang3 and LU Chunyang1 |Show fewer author(s)
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    References(45)

    [1] [1] NIKOLIC' V, KOMLJENOVIC' M, MARJANOVIC' N, et al. Lead immobilization by geopolymers based on mechanically activated fly ash[J]. Ceramics International, 2014, 40(6): 8479-8488.

    [2] [2] WANG M M, ZHU Y, CHENG L R, et al. Review on utilization of biochar for metal-contaminated soil and sediment remediation[J]. Journal of Environmental Sciences, 2018, 63: 156-173.

    [3] [3] GUO B, LIU B, YANG J, et al. The mechanisms of heavy metal immobilization by cementitious material treatments and thermal treatments: a review[J]. Journal of Environmental Management, 2017, 193: 410-422.

    [4] [4] WANG Y G, HAN F L, MU J Q. Solidification/stabilization mechanism of Pb(II), Cd(II), Mn(II) and Cr(III) in fly ash based geopolymers[J]. Construction and Building Materials, 2018, 160: 818-827.

    [5] [5] DAVIDOVITS J. Geopolymers and geopolymeric materials[J]. Journal of Thermal Analysis, 1989, 35(2): 429-441.

    [6] [6] FAHIM HUSEIEN G, MIRZA J, ISMAIL M, et al. Geopolymer mortars as sustainable repair material: a comprehensive review[J]. Renewable and Sustainable Energy Reviews, 2017, 80: 54-74.

    [7] [7] LIEW Y M, HEAH C Y, MOHD MUSTAFA A B, et al. Structure and properties of clay-based geopolymer cements: a review[J]. Progress in Materials Science, 2016, 83: 595-629.

    [8] [8] JI Z H, PEI Y S. Bibliographic and visualized analysis of geopolymer research and its application in heavy metal immobilization: a review[J]. Journal of Environmental Management, 2019, 231: 256-267.

    [9] [9] HU Y Y, ZHANG P F, LI J P, et al. Stabilization and separation of heavy metals in incineration fly ash during the hydrothermal treatment process[J]. Journal of Hazardous Materials, 2015, 299: 149-157.

    [10] [10] FERNNDEZ-PEREIRA C, LUNA-GALIANO Y, PREZ-CLEMENTE M, et al. Immobilization of heavy metals (Cd, Ni or Pb) using aluminate geopolymers[J]. Materials Letters, 2018, 227: 184-186.

    [11] [11] GUO B, PAN D A, LIU B, et al. Immobilization mechanism of Pb in fly ash-based geopolymer[J]. Construction and Building Materials, 2017, 134: 123-130.

    [12] [12] LONG W J, LIN C, YE T H, et al. Stabilization/solidification of hazardous lead glass by geopolymers[J]. Construction and Building Materials, 2021, 294: 123574.

    [13] [13] GUZMN-CARRILLO H R, GASCA-TIRADO J R, LPEZ-ROMERO J M, et al. Encapsulation of toxic heavy metals from waste CRT using calcined kaolin base-geopolymer[J]. Materials Chemistry and Physics, 2021, 257: 123745.

    [14] [14] WAN Q, RAO F, SONG S X, et al. Immobilization forms of ZnO in the solidification/stabilization (S/S) of a zinc mine tailing through geopolymerization[J]. Journal of Materials Research and Technology, 2019, 8(6): 5728-5735.

    [15] [15] LONG W J, PENG J K, GU Y C, et al. Recycled use of municipal solid waste incinerator fly ash and ferronickel slag for eco-friendly mortar through geopolymer technology[J]. Journal of Cleaner Production, 2021, 307: 127281.

    [16] [16] NATH S K. Fly ash and zinc slag blended geopolymer: immobilization of hazardous materials and development of paving blocks[J]. Journal of Hazardous Materials, 2020, 387: 121673.

    [17] [17] EL-ESWED B I, YOUSEF R I, ALSHAAER M, et al. Stabilization/solidification of heavy metals in kaolin/zeolite based geopolymers[J]. International Journal of Mineral Processing, 2015, 137: 34-42.

    [18] [18] XIA M, MUHAMMAD F, ZENG L H, et al. Solidification/stabilization of lead-zinc smelting slag in composite based geopolymer[J]. Journal of Cleaner Production, 2019, 209: 1206-1215.

    [19] [19] LI J, LI J X, WEI H, et al. Alkaline-thermal activated electrolytic manganese residue-based geopolymers for efficient immobilization of heavy metals[J]. Construction and Building Materials, 2021, 298: 123853.

    [20] [20] MUHAMMAD F, HUANG X, LI S, et al. Strength evaluation by using polycarboxylate superplasticizer and solidification efficiency of Cr6+, Pb2+ and Cd2+ in composite based geopolymer[J]. Journal of Cleaner Production, 2018, 188: 807-815.

    [21] [21] WANG L, GEDDES D A, WALKLEY B, et al. The role of zinc in metakaolin-based geopolymers[J]. Cement and Concrete Research, 2020, 136: 106194.

    [22] [22] ZHANG J G, PROVIS J L, FENG D W, et al. Geopolymers for immobilization of Cr6+, Cd2+, and Pb2+[J]. Journal of Hazardous Materials, 2008, 157(2/3): 587-598.

    [23] [23] PU S Y, ZHU Z D, SONG W L, et al. A novel acidic phosphoric-based geopolymer binder for lead solidification/stabilization[J]. Journal of Hazardous Materials, 2021, 415: 125659.

    [24] [24] HU S X, ZHONG L L, YANG X J, et al. Synthesis of rare earth tailing-based geopolymer for efficiently immobilizing heavy metals[J]. Construction and Building Materials, 2020, 254: 119273.

    [25] [25] KOPLK J, KALINA L, MSILKO J, et al. The characterization of fixation of Ba, Pb, and Cu in alkali-activated fly ash/blast furnace slag matrix[J]. Materials (Basel, Switzerland), 2016, 9(7): 533.

    [26] [26] EL-ESWED B I, ALDAGAG O M, KHALILI F I. Efficiency and mechanism of stabilization/solidification of Pb(II), Cd(II), Cu(II), Th(IV) and U(VI) in metakaolin based geopolymers[J]. Applied Clay Science, 2017, 140: 148-156.

    [27] [27] CHEN J Y, WANG Y H, WANG H Q, et al. Detoxification/immobilization of hexavalent chromium using metakaolin-based geopolymer coupled with ferrous chloride[J]. Journal of Environmental Chemical Engineering, 2016, 4(2): 2084-2089.

    [28] [28] CHEN J Y, WANG Y H, ZHOU S, et al. Reduction/immobilization processes of hexavalent chromium using metakaolin-based geopolymer[J]. Journal of Environmental Chemical Engineering, 2017, 5(1): 373-380.

    [29] [29] WEI Y F, WANG J, WANG J X, et al. Hydrothermal processing, characterization and leaching toxicity of Cr-added “fly ash-metakaolin” based geopolymer[J]. Construction and Building Materials, 2020, 251: 118931.

    [30] [30] MUHAMMAD F, XIA M, LI S, et al. The reduction of chromite ore processing residues by green tea synthesized nano zerovalent iron and its solidification/stabilization in composite geopolymer[J]. Journal of Cleaner Production, 2019, 234: 381-391.

    [31] [31] HUANG X, MUHAMMAD F, YU L, et al. Reduction/immobilization of chromite ore processing residue using composite materials based geopolymer coupled with zero-valent iron[J]. Ceramics International, 2018, 44(3): 3454-3463.

    [33] [33] BOCA SANTA R A A, SOARES C, RIELLA H G. Geopolymers with a high percentage of bottom ash for solidification/immobilization of different toxic metals[J]. Journal of Hazardous Materials, 2016, 318: 145-153.

    [34] [34] LEE S, VAN RIESSEN A, CHON C M, et al. Impact of activator type on the immobilisation of lead in fly ash-based geopolymer[J]. Journal of Hazardous Materials, 2016, 305: 59-66.

    [35] [35] KRNZLEIN E, HARMEL J, PLLMANN H, et al. Influence of the Si/Al ratio in geopolymers on the stability against acidic attack and the immobilization of Pb2+ and Zn2+[J]. Construction and Building Materials, 2019, 227: 116634.

    [36] [36] SUN S C, LIN J H, FANG L, et al. Formulation of sludge incineration residue based geopolymer and stabilization performance on potential toxic elements[J]. Waste Management, 2018, 77: 356-363.

    [37] [37] NIKOLIC' V, KOMLJENOVIC' M, DUNUZOVIC' N, et al. Immobilization of hexavalent chromium by fly ash-based geopolymers[J]. Composites Part B: Engineering, 2017, 112: 213-223.

    [38] [38] GUO X L, SHI H S, XU M F. Static and dynamic leaching experiments of heavy metals from fly ash-based geopolymers[J]. Journal of Wuhan University of Technology-Mater Sci Ed, 2013, 28(5): 938-943.

    [39] [39] NIKOLIC' V, KOMLJENOVIC' M, DUNUZOVIC' N, et al. The influence of Pb addition on the properties of fly ash-based geopolymers[J]. Journal of Hazardous Materials, 2018, 350: 98-107.

    [40] [40] FAN C C, WANG B M, AI H M, et al. A comparative study on solidification/stabilization characteristics of coal fly ash-based geopolymer and Portland cement on heavy metals in MSWI fly ash[J]. Journal of Cleaner Production, 2021, 319: 128790.

    [41] [41] CHEN Y C, CHEN F Y, ZHOU F, et al. Early solidification/stabilization mechanism of heavy metals (Pb, Cr and Zn) in shell coal gasification fly ash based geopolymer[J]. The Science of the Total Environment, 2022, 802: 149905.

    [42] [42] SUN S C, LIN J H, ZHANG P X, et al. Geopolymer synthetized from sludge residue pretreated by the wet alkalinizing method: compressive strength and immobilization efficiency of heavy metal[J]. Construction and Building Materials, 2018, 170: 619-626.

    [43] [43] JI Z H, SU L Y, PEI Y S. Synthesis and toxic metals (Cd, Pb, and Zn) immobilization properties of drinking water treatment residuals and metakaolin-based geopolymers[J]. Materials Chemistry and Physics, 2020, 242: 122535.

    [44] [44] JI Z H, PEI Y S. Geopolymers produced from drinking water treatment residue and bottom ash for the immobilization of heavy metals[J]. Chemosphere, 2019, 225: 579-587.

    [45] [45] JI Z H, PEI Y S. Immobilization efficiency and mechanism of metal cations (Cd2+, Pb2+ and Zn2+) and anions (AsO3-4 and Cr2O2-7) in wastes-based geopolymer[J]. Journal of Hazardous Materials, 2020, 384: 121290.

    [46] [46] ZHAO S J, XIA M, YU L, et al. Optimization for the preparation of composite geopolymer using response surface methodology and its application in lead-zinc tailings solidification[J]. Construction and Building Materials, 2021, 266: 120969.

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    CHEN Shuai, WANG Qingping, WANG Yanjun, WU Qiugang, ZHAO Heng, CHEN Xiaoyang, LU Chunyang. Research Progress on Heavy Metal Ions Immobilized by Geopolymers[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(10): 3501

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    Paper Information

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    Received: May. 17, 2022

    Accepted: --

    Published Online: Nov. 10, 2022

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    DOI:

    CSTR:32186.14.

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