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[1] S. Dixit, A. Yadav, P. D. Dwivedi, and M. Das, “Toxic hazards of leather industry and technologies to combat threat: A review,” Journal of Cleaner Production, vol. 87, no. 1. pp. 39–49, Jan-2015 |
Sách, tạp chí |
Tiêu đề: |
Toxic hazards of leather industry and technologies to combat threat: A review,” "Journal of Cleaner Production |
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[2] L. Bhanuprakash, A. Ali, R. Mokkoth, and S. Varghese, “Mode I and Mode II interlaminar fracture behavior of E-glass fiber reinforced epoxy composites modified with reduced exfoliated graphite oxide,” Polymer Composites, vol. 39. pp. E2506–E2518, 2018 |
Sách, tạp chí |
Tiêu đề: |
Mode I and Mode II interlaminar fracture behavior of E-glass fiber reinforced epoxy composites modified with reduced exfoliated graphite oxide,” "Polymer Composites |
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[3] L. Zhang and J. M. Cole, “Anchoring groups for dye-sensitized solar cells,” ACS Applied Materials and Interfaces, vol. 7, no. 6. pp. 3427–3455, 18-Feb-2015 |
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Tiêu đề: |
Anchoring groups for dye-sensitized solar cells,” "ACS Applied Materials and Interfaces |
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[4] M. Sharma, D. Mondal, N. Singh, and K. Prasad, “Biomass derived solvents for the scalable production of single layered graphene from graphite,” Chem. Commun., vol. 52, no. 58, pp. 9074–9077, 2016 |
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Tiêu đề: |
Biomass derived solvents for the scalable production of single layered graphene from graphite,” "Chem. Commun |
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[5] T. Van Tran, Q. T. P. Bui, T. D. Nguyen, V. T. Thanh Ho, and L. G. Bach, “Application of response surface methodology to optimize the fabrication of ZnCl2-activated carbon from sugarcane bagasse for the removal of Cu2+,” Water Science and Technology, vol. 75, no. 9. pp. 2047–2055, 2017 |
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Tiêu đề: |
Application of response surface methodology to optimize the fabrication of ZnCl2-activated carbon from sugarcane bagasse for the removal of Cu2+,” "Water Science and Technology |
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[6] D. D. Sewu, P. Boakye, and S. H. Woo, “Highly efficient adsorption of cationic dye by biochar produced with Korean cabbage waste,” Bioresour.Technol., vol. 224, pp. 206–213, Jan. 2017 |
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Tiêu đề: |
Highly efficient adsorption of cationic dye by biochar produced with Korean cabbage waste,” "Bioresour. "Technol |
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[7] C. Hermida-Merino, M. Pộrez-Rodrớguez, M. M. Piủeiro, and M. J. Pastoriza-Gallego, “Evidence of viscoplastic behavior of exfoliated graphite nanofluids,” Soft Matter, vol. 12, no. 8, pp. 2264–2275, 2016 |
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Tiêu đề: |
Evidence of viscoplastic behavior of exfoliated graphite nanofluids,” "Soft Matter |
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[8] Q. Peng, M. Liu, J. Zheng, and C. Zhou, “Adsorption of dyes in aqueous solutions by chitosan-halloysite nanotubes composite hydrogel beads,”Microporous Mesoporous Mater., vol. 201, no. C, pp. 190–201, Jan. 2015 |
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Tiêu đề: |
Adsorption of dyes in aqueous solutions by chitosan-halloysite nanotubes composite hydrogel beads,” "Microporous Mesoporous Mater |
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[9] H. Q. Pham, T. T. Huynh, A. Van Nguyen, T. Van Thuan, L. G. Bach, and V. T. Thanh Ho, “Advanced Ti 0.7 W 0.3 O 2 Nanoparticles Prepared via Solvothermal Process Using Titanium Tetrachloride and TungstenHexachloride as Precursors,” J. Nanosci. Nanotechnol., vol. 18, no. 10, pp.7177–7182, Oct. 2018 |
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Tiêu đề: |
Advanced Ti 0.7 W 0.3 O 2 Nanoparticles Prepared via Solvothermal Process Using Titanium Tetrachloride and Tungsten Hexachloride as Precursors,” "J. Nanosci. Nanotechnol |
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[10] T. V Tran et al., “A five coordination Cu(II) cluster-based MOF and its application in the synthesis of pharmaceuticals: Via sp3 C-H/N-Hoxidative coupling,” Catal. Sci. Technol., vol. 7, no. 16, pp. 3453–3458, 2017 |
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Tiêu đề: |
et al.", “A five coordination Cu(II) cluster-based MOF and its application in the synthesis of pharmaceuticals: Via sp3 C-H/N-H oxidative coupling,” "Catal. Sci. Technol |
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[12] A. A. Inyinbor, F. A. Adekola, and G. A. Olatunji, “Kinetics, isotherms and thermodynamic modeling of liquid phase adsorption of Rhodamine B dye onto Raphia hookerie fruit epicarp,” Water Resour. Ind., vol. 15, pp.14–27, 2016 |
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Tiêu đề: |
Kinetics, isotherms and thermodynamic modeling of liquid phase adsorption of Rhodamine B dye onto Raphia hookerie fruit epicarp,” "Water Resour. Ind |
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[13] K. L. Tan and B. H. Hameed, “Insight into the adsorption kinetics models for the removal of contaminants from aqueous solutions,” Journal of the Taiwan Institute of Chemical Engineers, vol. 74. pp. 25–48, 2017 |
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Tiêu đề: |
Insight into the adsorption kinetics models for the removal of contaminants from aqueous solutions,” "Journal of the Taiwan Institute of Chemical Engineers |
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[14] T. Van Pham et al., “The Preparation and Characterization of Expanded Graphite via Microwave Irradiation and Conventional Heating for the Purification of Oil Contaminated Water,” J. Nanosci. Nanotechnol., vol |
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Tiêu đề: |
et al.", “The Preparation and Characterization of Expanded Graphite via Microwave Irradiation and Conventional Heating for the Purification of Oil Contaminated Water,” "J. Nanosci. Nanotechnol |
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[15] G. Patra, R. Barnwal, S. K. Behera, and B. C. Meikap, “Removal of dyes from aqueous solution by sorption with fly ash using a hydrocyclone,” J.Environ. Chem. Eng., vol. 6, no. 4, pp. 5204–5211, Aug. 2018 |
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Tiêu đề: |
Removal of dyes from aqueous solution by sorption with fly ash using a hydrocyclone,” "J. "Environ. Chem. Eng |
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[16] X. Van Heerden and H. Badenhorst, “The influence of three different intercalation techniques on the microstructure of exfoliated graphite,”Carbon N. Y., vol. 88, pp. 173–184, Jul. 2015 |
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Tiêu đề: |
The influence of three different intercalation techniques on the microstructure of exfoliated graphite,” "Carbon N. Y |
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[17] T. Hoang et al., “Synthesis and application of graphene oxide aerogel as an adsorbent for removal of dyes from water,” Materials Letters, vol. 238.pp. 134–137, 2019 |
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Tiêu đề: |
et al.", “Synthesis and application of graphene oxide aerogel as an adsorbent for removal of dyes from water,” "Materials Letters |
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[18] X. Ding et al., “A new magnetic expanded graphite for removal of oil leakage,” Mar. Pollut. Bull., vol. 81, no. 1, pp. 185–190, Apr. 2014 |
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Tiêu đề: |
et al.", “A new magnetic expanded graphite for removal of oil leakage,” "Mar. Pollut. Bull |
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[19] J. H. Li, L. L. Feng, and Z. X. Jia, “Preparation of expanded graphite with 160 μm mesh of fine flake graphite,” Materials Letters, vol. 60, no. 6. pp.746–749, 2006 |
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Tiêu đề: |
Preparation of expanded graphite with 160 μm mesh of fine flake graphite,” "Materials Letters |
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[20] M. Toyoda and M. Inagaki, “Heavy oil sorption using exfoliated graphite,” Carbon, vol. 38, no. 2. pp. 199–210, 2000 |
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Tiêu đề: |
Heavy oil sorption using exfoliated graphite,” "Carbon |
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[21] L. M. Guoliang Wang, Qingrong Sun, Yanqing Zhang, Jinhong Fan, “Sorption and regeneration of magnetic exfoliated graphite as a newsorbent for oil pollution,” Surg Gynecol Obs., vol. 263, pp. 183–188, 2010 |
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Tiêu đề: |
Sorption and regeneration of magnetic exfoliated graphite as a new sorbent for oil pollution,” "Surg Gynecol Obs |
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