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Articles

Adsorption of direct yellow brown D3G from aqueous solution using loaded modified low-cost lignite: Performance and mechanism

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Pages 1642-1651 | Received 10 Jul 2019, Accepted 28 Sep 2019, Published online: 12 Oct 2019

References

  • Su X-H, Ling WL, Teng TT, et al. Combination and hybridisation of treatments in dye wastewater treatment: A review. J Environ Chem Eng. 2016;4(3):3618–3631.
  • Reddy DR, Dinesh GK, Anandan S, et al. Sonophotocatalytic treatment of Naphthol Blue Black dye and real textile wastewater using synthesized Fe doped TiO2. Chem Eng Process. 2016;99:10–18.
  • Bretschneider G, Berberov EM, Moxley RA. Advanced treatment of dye intermediate wastewater by Fenton Reagent oxidation process. Water Purif Technol. 2011;16(6):679–697.
  • Lan SH, Ma P, Geng SW, et al. Flocculant screening for the pretreatment of printing and dyeing wastewater. Adv Mat Res. 2014;1010–1012(1010–1012):761–764.
  • Sadaf S, Bhatti HN. Response surface methodology approach for optimization of adsorption process for the removal of Indosol yellow BG dye from aqueous solution by agricultural waste. Desalination Water Treat. 2016;57(25):11773–11781.
  • Yagub MT, Sen TK, Afroze S, et al. Dye and its removal from aqueous solution by adsorption: a review. Adv Colloid Interface Sci. 2014;209:172–184.
  • Aghdasinia H, Asiabi HR. Adsorption of a cationic dye (methylene blue) by Iranian natural clays from aqueous solutions: equilibrium, kinetic and thermodynamic study. Environ Earth Sci. 2018;77(5):218.
  • Oskui FN, Aghdasinia H, Sorkhabi MG. Adsorption of Cr (III) using an Iranian natural nanoclay: applicable to tannery wastewater: equilibrium, kinetic, and thermodynamic. Environ Earth Sci. 2019;78(4):106.
  • Oskui FN, Aghdasinia H, Sorkhabi MG. Modeling and optimization of chromium adsorption onto clay using response surface methodology, artificial neural network, and equilibrium isotherm models. Environ Prog Sustain Energy. 2019. doi:10.1002/ep.13260.
  • Guan J, He DM, Song BB, et al. Lignite thermal upgrading and its effect on surface properties. Adv Mat Res. 2012;524–527:887–893.
  • Dong LH, Yuan Q, Yuan HL. Changes of chemical properties of humic acids from crude and fungal transformed lignite. Fuel. 2006;85(17):2402–2407.
  • Pentari D, Perdikatsis V, Katsimicha D, et al. Sorption properties of low calorific value Greek lignites: removal of lead, cadmium, zinc and copper ions from aqueous solutions. J Hazard Mater. 2009;168(2–3):1017–1021.
  • Tong K, Zhang Y, Fu D, et al. Removal of organic pollutants from super heavy oil wastewater by lignite activated coke. Colloids Surf A. 2014;447:120–130.
  • Tong K, Lin A, Ji G, et al. The effects of adsorbing organic pollutants from super heavy oil wastewater by lignite activated coke. J Hazard Mater. 2016;308:113–119.
  • Nazari MA, Mohaddes F, Pramanik BK, et al. Application of Victorian brown coal for removal of ammonium and organics from wastewater. Environ Technol. 2018;39(8):1041–1051.
  • Qi Y, Hoadley AFA, Chaffee AL, et al. Characterisation of lignite as an industrial adsorbent. Fuel. 2011;90(4):1567–1574.
  • Gürses A, Hassani A, Kiransan M, et al. Removal of methylene blue from aqueous solution using by untreated lignite as potential low-cost adsorbent: kinetic, thermodynamic and equilibrium approach. J Water Process Eng. 2014;2:10–21.
  • Li J, Liu G, Zhou J, et al. Redox activity of lignite and its accelerating effects on the chemical reduction of azo dye by sulfide. RSC Adv. 2016;6(71):66930–66937.
  • Qiang L, Yang D, Liu Q, et al. Effects of hydrothermal dewatering of lignite on rheology of coal water slurry. Can J Chem Eng. 2019;97(1):323–329.
  • Milicevic S, Boljanac T, Martinovic S, et al. Removal of copper from aqueous solutions by low cost adsorbent-Kolubara lignite. Fuel Process Technol. 2012;95(95):1–7.
  • Zou X, Yao J, Yang X, et al. Catalytic effects of metal chlorides on the pyrolysis of lignite. Energy Fuels. 2007;21(2):619–624.
  • Zhang XD, Kong LF, Yong Q, et al. Research on the microcrystalline structure of the fractionally-extracted Longkou lignite by XRD and HRTEM. J China Coal Soc. 2013;38(6):1025–1030.
  • Onsuratoom S, Puangpetch T, Chavadej S. Comparative investigation of hydrogen production over Ag-, Ni-, and Cu-loaded mesoporous-assembled TiO2–ZrO2 mixed oxide nanocrystal photocatalysts. Chem Eng J. 2011;173(2):667–675.
  • Liu Z, Uddin MA, Sun Z. FT-IR and XRD analysis of natural Na-bentonite and Cu(II)-loaded Na-bentonite. Spectrochim Acta A. 2011;79(5):1013–1016.
  • Li X, Zhang X, Lei L. Preparation of CuNaY zeolites with microwave irradiation and their application for removing thiophene from model fuel. Sep Purif Technol. 2009;64(3):326–331.
  • Velu S, Suzuki K, Vijayaraj M, et al. In situ XPS investigations of Cu1−xNixZnAl-mixed metal oxide catalysts used in the oxidative steam reforming of bio-ethanol. Appl Catal B Environ. 2005;55(4):287–299.
  • Li Z. Influence of the surface oxygenated groups of activated carbon on preparation of a nano Cu/AC catalyst and heterogeneous catalysis in the oxidative carbonylation of methanol. Appl Catal B Environ. 2015;179:95–105.
  • Wei F, Zhang Y, Lv F, et al. Extraction of organic materials from red water by metal-impregnated lignite activated carbon. J Hazard Mater. 2011;197(24):352–360.
  • Li ZK, Wei XY, Yan HL, et al. Insight into the structural features of Zhaotong lignite using multiple techniques. Fuel. 2015;153:176–182.
  • Song Y, Wei F, Na L, et al. Effects of demineralization on the structure and combustion properties of Shengli lignite. Fuel. 2016;183:659–667.
  • Rodrigues LA, Da Silva MLCP. An investigation of phosphate adsorption from aqueous solution onto hydrous niobium oxide prepared by co-precipitation method. Colloids Surf A. 2009;334(1–3):191–196.
  • Saikia BK, Boruah RK, Gogoi PK. FT-IR and XRD analysis of coal from Makum coalfield of Assam. J Earth Syst Sci. 2007;116(6):575–579.
  • Lu Y, Feng L, Jiang X, et al. Construction of a molecular structure model of mild-oxidized Chinese lignite using Gaussian09 based on data from FTIR, solid state 13C-NMR. J Mol Model. 2018;24(6):135.
  • Saikia BK, Boruah RK, Gogoi PK. XRD and FT-IR investigations of sub-bituminous Assam coals. Bull Mater Sci. 2007;30(4):421–426.
  • Mukherjee S, Srivastava SK. Minerals transformations in Northeastern region coals of India on heat treatment. Energy Fuels. 2006;20(3):1089–1096.
  • Gurses A, Hassani A, Kıranşan M, et al. Removal of methylene blue from aqueous solution using by untreated lignite as potential low-cost adsorbent: kinetic, thermodynamic and equilibrium approach. J Water Process Eng. 2014;2:10–21.
  • Feng Y, Dou J, Tahmasebi A, et al. Regeneration of Fe-Zn-Cu sorbents supported on activated lignite char for the desulfurization of coke oven gas. Energy Fuels. 2015;29(11):7124–7134.
  • Ozvatan S, Yurum Y. Catalytic decarboxylation of Elbistan lignite. Energy Sources. 2002;24(6):581–589.
  • Yani S, Zhang D. An experimental study into pyrite transformation during pyrolysis of Australian lignite samples. Fuel. 2010;89(7):1700–1708.
  • Yi-Chao L, Shui-Ping C. The biosorption of heavy metals from aqueous solution by Spirogyra and Cladophora filamentous macroalgae. Bioresour Technol. 2011;102(9):5297–5304.
  • Yuhshan H. Citation review of Lagergren kinetic rate equation on adsorption reactions. Scientometrics. 2004;59(1):171–177.
  • Lazaridis NK, Kyzas GZ, Vassiliou AA, et al. Chitosan derivatives as Biosorbents for basic dyes. Langmuir. 2007;23(14):7634–7643.
  • Shahwan T. Sorption kinetics: obtaining a pseudo-second order rate equation based on a mass balance approach. J Environ Chem Eng. 2014;2(2):1001–1006.
  • Chen C, Li X, Zhao D, et al. Adsorption kinetic, thermodynamic and desorption studies of Th(IV) on oxidized multi-wall carbon nanotubes. Colloids Surf A. 2007;302(1–3):449–454.
  • Ding L, Zou B, Gao W, et al. Adsorption of Rhodamine-B from aqueous solution using treated rice husk-based activated carbon. Colloids Surf A. 2014;446:1–7.
  • Rumei C, Shengju O, Bo X, et al. Equilibrium and molecular mechanism of anionic dyes adsorption onto copper(II) complex of dithiocarbamate-modified starch. Langmuir. 2010;26(2):752–758.
  • Cheung WH, Szeto YS, McKay G. Enhancing the adsorption capacities of acid dyes by chitosan nano particles. Bioresour Technol. 2009;100(3):1143–1148.
  • Tu Y, Feng P, Ren Y, et al. Adsorption of ammonia nitrogen on lignite and its influence on coal water slurry preparation. Fuel. 2019;238:34–43.
  • Wang J, He Y, Zhang Y, et al. Research on cationic surfactant adsorption performance on different density lignite particles by XPS nitrogen analysis. Fuel. 2018;213:48–54.
  • Cheng R, Bo X, Li Y. Application of nickel (II) complex of dithiocarbamate-modified starch for anionic dyes removal from aqueous solutions. J Appl Polym Sci. 2012;123(4):2439–2444.
  • Qada ENE, Allen SJ, Walker GM. Kinetic modeling of the adsorption of basic dyes onto steam-activated bituminous coal. Ind Eng Chem Res. 2007;46(14):4764–4771.
  • Foletto EL, Collazzo GC, Mazutti MA, et al. Adsorption of textile dye on zinc stannate oxide: equilibrium, kinetic and thermodynamics studies. Sep Sci Technol. 2011;46(16):2510–2516.

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