• Journal of Inorganic Materials
  • Vol. 38, Issue 11, 1281 (2023)
Ya TANG1,2, Shengrui SUN2, Jia FAN1,2, Qingfeng YANG3..., Manjiang DONG2, Jiahui KOU1,* and Yangqiao LIU2,*|Show fewer author(s)
Author Affiliations
  • 11. State Key Laboratory of Materials-Oriented Chemical Engineering, College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, China
  • 22. Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, China
  • 33. Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201210, China
  • show less
    DOI: 10.15541/jim20230209 Cite this Article
    Ya TANG, Shengrui SUN, Jia FAN, Qingfeng YANG, Manjiang DONG, Jiahui KOU, Yangqiao LIU. PEI Modified Hydrated Calcium Silicate Derived from Fly Ash and Its adsorption for Removal of Cu (II) and Catalytic Degradation of Organic Pollutants[J]. Journal of Inorganic Materials, 2023, 38(11): 1281 Copy Citation Text show less
    References

    [1] H CHEN, X WANG, J LI et al. Cotton derived carbonaceous aerogels for the efficient removal of organic pollutants and heavy metal ions. Journal of Materials Chemistry A, 6073(2015).

    [2] M B GAWANDE, A GOSWAMI, F X FELPIN et al. Cu and Cu-based nanoparticles: synthesis and applications in review catalysis. Chemical Reviews, 3722(2016).

    [3] M KOHANTORABI, G MOUSSAVI, S GIANNAKIS. A review of the innovations in metal- and carbon-based catalysts explored for heterogeneous peroxymonosulfate (PMS) activation, with focus on radical vs. non-radical degradation pathways of organic contaminants. Chemical Engineering Journal, 127957(2021).

    [4] T ADITYA, J JANA, N K SINGH et al. Remarkable facet selective reduction of 4-nitrophenol by morphologically tailored (111) faceted Cu2O nanocatalyst. ACS Omega, 1968(2017).

    [5] T TONG, S ZHAO, C BOO et al. Relating silica scaling in reverse osmosis to membrane surface properties. Environmental Science & Technology, 4396(2017).

    [6] A BERA, J S TRIVEDI, S B KUMAR et al. Anti-organic fouling and anti-biofouling poly(piperazineamide) thin film nanocomposite membranes for low pressure removal of heavy metal ions. Journal of Hazardous Materials, 86(2018).

    [7] F FU, Q WANG. Removal of heavy metal ions from wastewaters: a review. Journal of Environmental Management, 407(2011).

    [8] L SUN, J WU, J WANG et al. CO2-assisted ‘Weathering’ of steel slag-derived calcium silicate hydrate: A generalized strategy for recycling noble metals and constructing SiO2-based nanocomposites. Journal of Colloid and Interface Science, 1008(2022).

    [9] N SHAO, S TANG, Z LIU et al. Hierarchically structured calcium silicate hydrate-based nanocomposites derived from steel slag for highly efficient heavy metal removal from wastewater. ACS Sustainable Chemistry & Engineering, 14926(2018).

    [10] L CHEN, X WANG, Y CHEN et al. Recycling heavy metals from wastewater for photocatalytic CO2 reduction. Chemical Engineering Journal, 125922(2020).

    [11] Z CHEN, Y LI, Y CAI et al. Application of covalent organic frameworks and metal-organic frameworks nanomaterials in organic/inorganic pollutants removal from solutions through sorption-catalysis strategies. Carbon Research, 8(2023).

    [12] S J TAUSTER, S C FUNG. Strong metal-support interactions- occurrence among binary oxides of groups IIA-VB. Journal of Catalysis, 29(1978).

    [13] H GU, X LIU, S WANG et al. COF-based composites: extraordinary removal performance for heavy metals and radionuclides from aqueous solutions. Reviews of Environmental Contamination and Toxicology, 23(2022).

    [14] X WANG, X LI, J WANG et al. Recent advances in carbon nitride-based nanomaterials for the removal of heavy metal ions from aqueous solution. Journal of Inorganic Materials, 260(2020).

    [15] H GUO, P SUN, Y LIANG et al. In-situ fabrication of polyelectrolyte-CSH superhydrophilic coatings via layer-by-layer assembly. Chemical Engineering Journal, 198(2014).

    [16] A MEISZTERICS, L ROSTA, H PETERLIK et al. Structural characterization of gel-derived calcium silicate systems. Journal of Physical Chemistry A, 10403(2010).

    [17] A M KLONKOWSKI, B GROBENLA, T WIDERNIK et al. The coordination state of copper(II) complexes anchored and grafted onto the surface of organically modified silicates. Langmuir, 5814(1999).

    [18] C B GODIYA, C REVADEKAR, J KIM et al. Amine- bilayer-functionalized cellulose-chitosan composite hydrogel for the efficient uptake of hazardous metal cations and catalysis in polluted water. Journal of Hazardous Materials, 129112(2022).

    [19] P VICENNATI, A GIULIANO, G ORTAGGI et al. Polyethylenimine in medicinal chemistry. Current Medicinal Chemistry, 2826(2008).

    [20] A NOSRATI, M LARSSON, J B LINDEN et al. Polyethyleneimine functionalized mesoporous diatomite particles for selective copper recovery from aqueous media. International Journal of Mineral Processing, 29(2017).

    [21] Y HUANG, H WU, T SHAO et al. Enhanced copper adsorption by DTPA-chitosan/alginate composite beads: Mechanism and application in simulated electroplating wastewater. Chemical Engineering Journal, 322(2018).

    [22] D CHADWICK, M A KAROLEWSKI. Calibration of XPS core-level binding-energies-influence of the surface chemical-shift. Journal of Electron Spectroscopy and Related Phenomena, 181(1981).

    [23] Z A SUTIRMAN, M M SANAGI, KARIM K J ABD et al. Equilibrium, kinetic and mechanism studies of Cu(II) and Cd(II) ions adsorption by modified chitosan beads. International Journal of Biological Macromolecules, 255(2018).

    [24] B PENG, T SONG, T WANG et al. Facile synthesis of Fe3O4@Cu(OH)2 composites and their arsenic adsorption application. Chemical Engineering Journal, 15(2016).

    [25] C M ZHAO, G C WANG, S L LI et al. Reaction pathway led by silicate structure transformation on decomposition of CaSiO3 in alkali fusion process using NaOH. Transactions of Nonferrous Metals Society of China, 3827(2015).

    [26] S ZHANG, X ZHANG, C BAI et al. Effect of TiO2 content on the structure of CaO-SiO2-TiO2 system by molecular dynamics simulation. ISIJ International, 1131(2013).

    [27] K ZHU, C LIU, W XIA et al. Non-radical pathway dominated degradation of organic pollutants by nitrogen-doped microtube porous graphitic carbon derived from biomass for activating peroxymonosulfate: performance, mechanism and environmental application. Journal of Colloid and Interface Science, 890(2022).

    [28] C HUANG, Y WANG, M GONG et al. α-MnO2/palygorskite composite as an effective catalyst for heterogeneous activation of peroxymonosulfate PMS for the degradation of Rhodamine B. Separation and Purification Technology, 115877(2020).

    [29] Y LIU, H GUO, Y ZHANG et al. Activation of peroxymonosulfate by BiVO4 under visible light for degradation of Rhodamine B. Chemical Physics Letters, 101(2016).

    [30] C MARINESCU, ALI M BEN, A HAMDI et al. Cobalt phthalocyanine-supported reduced graphene oxide: a highly efficient catalyst for heterogeneous activation of peroxymonosulfate for Rhodamine B and pentachlorophenol degradation. Chemical Engineering Journal, 465(2018).

    [31] Y ZHAO, H AN, J FENG et al. Impact of crystal types of AgFeO2 nanoparticles on the peroxymonosulfate activation in the water. Environmental Science & Technology, 4500(2019).

    [32] Q QIN, N QIAO, Y LIU et al. Spongelike porous CuO as an efficient peroxymonosulfate activator for degradation of Acid Orange 7. Applied Surface Science, 146479(2020).

    [33] Q LAN, S R SUN, P WU et al. Co-doped CuO/visible light synergistic activation of PMS for degradation of Rhodamine B and its mechanism. Journal of Inorganic Materials, 1171(2021).

    [34] R XIAO, Z LUO, Z WEI et al. Activation of peroxymonosulfate/ persulfate by nanomaterials for sulfate radical-based advanced oxidation technologies. Current Opinion in Chemical Engineering, 51(2018).

    [35] X DUAN, C SU, J MIAO et al. Insights into perovskite-catalyzed peroxymonosulfate activation: maneuverable cobalt sites for promoted evolution of sulfate radicals. Applied Catalysis B-Environmental, 626(2018).

    [36] Y ZHAO, H WANG, X LI et al. Recovery of CuO/C catalyst from spent anode material in battery to activate peroxymonosulfate for refractory organic contaminants degradation. Journal of Hazardous Materials, 126552(2021).

    [37] C SINGH, A GOYAL, S SINGHAL. Nickel-doped cobalt ferrite nanoparticles: efficient catalysts for the reduction of nitroaromatic compounds and photo-oxidative degradation of toxic dyes. Nanoscale, 7959(2014).

    [38] A BHATTACHARJEE, M AHMARUZZAMAN. Green synthesis of 2D CuO nanoleaves (NLs) and its application for the reduction of p-nitrophenol. Materials Letters, 79(2015).

    [39] S TANG, S VONGEHR, X MENG. Carbon spheres with controllable silver nanoparticle doping. Journal of Physical Chemistry C, 977(2010).

    [40] T YANG, H Y ZOU, C Z HUANG. Synergetic catalytic effect of Cu2-xSe nanoparticles and reduced graphene oxide coembedded in electrospu n nanofibers for the reduction of a typical refractory organic compound. ACS Applied Materials & Interfaces, 15447(2015).

    [41] Z WANG, C XU, G GAO et al. Facile synthesis of well-dispersed Pd-graphene nanohybrids and their catalytic properties in 4-nitrophenol reduction. RSC Advances, 13644(2014).

    Ya TANG, Shengrui SUN, Jia FAN, Qingfeng YANG, Manjiang DONG, Jiahui KOU, Yangqiao LIU. PEI Modified Hydrated Calcium Silicate Derived from Fly Ash and Its adsorption for Removal of Cu (II) and Catalytic Degradation of Organic Pollutants[J]. Journal of Inorganic Materials, 2023, 38(11): 1281
    Download Citation