549
Views
0
CrossRef citations to date
0
Altmetric
Research Articles

A Triazine-Based Cationic Covalent Organic Framework as a Robust Adsorbent for Removal of Methyl Orange

& ORCID Icon
Pages 5940-5957 | Received 27 Apr 2022, Accepted 26 Jul 2022, Published online: 22 Aug 2022

References

  • P. Wu, L.Y. Jiang, Z. He, and Y. Song, “Treatment of Metallurgical Industry Wastewater for Organic Contaminant Removal in China: Status, Challenges, and Perspectives,” Environmental Science: Water Research & Technology 3, no. 6 (2017): 1015–31.
  • A. Shah, S. Shahzad, A. Munir, M.N. Nadagouda, G.S. Khan, D.F. Shams, D.D. Dionysiou, and U.A. Rana, “Micelles as Soil and Water Decontamination Agents,” Chemical Reviews 116, no. 10 (2016): 6042–74.
  • J.B. Puritz, and R.J. Toonen, “Coastal Pollution Limits Pelagic Larval Dispersal,” Nature Communications 2, no. 1 (2011): 1–8.
  • R. Kant, “Textile Dyeing Industry an Environmental Hazard,” Natural Science 04, no. 01 (2012): 22–6.
  • A.T. Paulino, L.A. Belfiore, L.T. Kubota, E.C. Muniz, V.C. Almeida, and E.B. Tambourgi, “Effect of Magnetite on the Adsorption Behavior of Pb (II), Cd (II), and Cu (II) in Chitosan-Based Hydrogels,” Desalination 275, no. 1–3 (2011): 187–96.
  • J. Liao, S. Lin, L. Zhang, N. Pan, X. Cao, and J. Li, “Photocatalytic Degradation of Methyl Orange Using a TiO2/Ti Mesh Electrode with 3D Nanotube Arrays,” ACS Applied Materials & Interfaces 4, no. 1 (2012): 171–7.
  • C.-Z. Liang, S.-P. Sun, F.-Y. Li, Y.-K. Ong, and T.-S. Chung, “Treatment of Highly Concentrated Wastewater Containing Multiple Synthetic Dyes by a Combined Process of Coagulation/Flocculation and Nanofiltration,” Journal of Membrane Science 469 (2014): 306–15.
  • C. Pan, and Y. Zhu, “New Type of BiPO4 Oxy-Acid Salt Photocatalyst with High Photocatalytic Activity on Degradation of Dye,” Environmental Science & Technology 44, no. 14 (2010): 5570–4.
  • A.I. Soliman, A.-M.A. Abdel-Wahab, and H.N.J.R.a Abdelhamid, “Hierarchical Porous Zeolitic Imidazolate Frameworks (ZIF-8) and ZnO@ N-Doped Carbon for Selective Adsorption and Photocatalytic Degradation of Organic Pollutants,” RSC Advances 12, no. 12 (2022): 7075–84.
  • H.W. Liang, X. Cao, W.J. Zhang, H.T. Lin, F. Zhou, L.F. Chen, and S.H. Yu, “Robust and Highly Efficient Free‐Standing Carbonaceous Nanofiber Membranes for Water Purification,” Advanced Functional Materials 21, no. 20 (2011): 3851–8.
  • P.S. David, A. Karunanithi, and N.N. Fathima, “Improved Filtration for Dye Removal Using Keratin–Polyamide Blend Nanofibrous Membranes,” Environmental Science and Pollution Research International 27, no. 36 (2020): 45629–38.
  • O. Türgay, G. Ersöz, S. Atalay, J. Forss, and U. Welander, “The Treatment of Azo Dyes Found in Textile Industry Wastewater by Anaerobic Biological Method and Chemical Oxidation,” Separation and Purification Technology 79, no. 1 (2011): 26–33.
  • S.M.D.A.G. Ulson, K.A.S. Bonilla, and A.A.U. de Souza, “Removal of COD and Color from Hydrolyzed Textile Azo Dye by Combined Ozonation and Biological Treatment,” Journal of Hazardous Materials 179, no. 1–3 (2010): 35–42.
  • Y. Chen, L. Chen, H. Bai, and L. Li, “Graphene Oxide–Chitosan Composite Hydrogels as Broad-Spectrum Adsorbents for Water Purification,” Journal of Materials Chemistry A 1, no. 6 (2013): 1992–2001.
  • S.U. Jan, A. Ahmad, A.A. Khan, S. Melhi, I. Ahmad, G. Sun, C.-M. Chen, and R. Ahmad, “Removal of Azo Dye from Aqueous Solution by a Low-Cost Activated Carbon Prepared from Coal: Adsorption Kinetics, Isotherms Study, and DFT Simulation,” Environmental Science and Pollution Research International 28, no. 8 (2021): 10234–47.
  • D. Jiang, M. Chen, H. Wang, G. Zeng, D. Huang, M. Cheng, Y. Liu, W. Xue, and Z. Wang, “The Application of Different Typological and Structural MOFs-Based Materials for the Dyes Adsorption,” Coordination Chemistry Reviews 380 (2019): 471–83.
  • S. Natarajan, H.C. Bajaj, and R.J. Tayade, “Recent Advances Based on the Synergetic Effect of Adsorption for Removal of Dyes from Waste Water Using Photocatalytic Process,” Journal of Environmental Sciences 65 (2018): 201–22.
  • S. Hou, S. Razzaque, and B. Tan, “Effects of Synthesis Methodology on Microporous Organic Hyper-Cross-Linked Polymers with Respect to Structural Porosity, Gas Uptake Performance and Fluorescence Properties,” Polymer Chemistry 10, no. 11 (2019): 1299–311.
  • Y. Tian, and G. Zhu, “Porous Aromatic Frameworks (PAFs),” Chemical Reviews 120, no. 16 (2020): 8934–86.
  • A. Rengaraj, P. Puthiaraj, Y. Haldorai, N.S. Heo, S.-K. Hwang, Y.-K. Han, S. Kwon, W.-S. Ahn, and Y.S. Huh, “Porous Covalent Triazine Polymer as a Potential Nanocargo for Cancer Therapy and Imaging,” ACS Applied Materials & Interfaces 8, no. 14 (2016): 8947–55.
  • L. Yang, R. Gong, G.I. Waterhouse, J. Dong, and J. Xu, “A Novel Covalent Triazine Framework Developed for Efficient Determination of 1-Naphthol in Water,” Environmental Science and Pollution Research International 28, no. 24 (2021): 31185–10.
  • J.-S.M. Lee, and A.I. Cooper, “Advances in Conjugated Microporous Polymers,” Chemical Reviews 120, no. 4 (2020): 2171–214.
  • N. Nouruzi, M. Dinari, N. Mokhtari, M. Farajzadeh, B. Gholipour, and S. Rostamnia, “Selective Catalytic Generation of Hydrogen over Covalent Organic Polymer Supported Pd Nanoparticles (COP-Pd),” Molecular Catalysis 493 (2020): 111057.
  • H.N. Abdelhamid, Z. Huang, A.M. El-Zohry, H. Zheng, and X.J.I.C Zou, “A Fast and Scalable Approach for Synthesis of Hierarchical Porous Zeolitic Imidazolate Frameworks and One-Pot Encapsulation of Target Molecules,” Inorganic Chemistry 56, no. 15 (2017): 9139–46.
  • H.N. Abdelhamid, and A.P.J.C.E.J. Mathew, “Cellulose-Zeolitic Imidazolate Frameworks (CelloZIFs) for Multifunctional Environmental Remediation: Adsorption and Catalytic Degradation,” Chemical Engineering Journal 426 (2021): 131733.
  • H.N. Abdelhamid, and A.P.J.C.C.R. Mathew, “Cellulose–Metal Organic Frameworks (CelloMOFs) Hybrid Materials and Their Multifaceted Applications: A Review,” Coordination Chemistry Reviews 451 (2022): 214263.
  • M. Gao, Q. Fu, M. Wang, K. Zhang, J. Zeng, L. Wang, Z. Xia, and D. Gao, “Facile Synthesis of Porous Covalent Organic Frameworks for the Effective Extraction of Nitroaromatic Compounds from Water Samples,” Analytica Chimica Acta 1084 (2019): 21–32.
  • M.G. Rabbani, A.K. Sekizkardes, Z. Kahveci, T.E. Reich, R. Ding, and H.M. El-Kaderi, “A 2D Mesoporous Imine-Linked Covalent Organic Framework for High Pressure Gas Storage Applications,” Chemistry 19, no. 10 (2013): 3324–8.
  • Sang Soo Han, José L. Mendoza-Cortés, and William A. Goddard, “Recent Advances on Simulation and Theory of Hydrogen Storage in Metal–Organic Frameworks and Covalent Organic Frameworks,” Chemical Society Reviews 38, no. 5 (2009): 1460–76.
  • X. Hu, Y. Long, M. Fan, M. Yuan, H. Zhao, J. Ma, and Z. Dong, “Two-Dimensional Covalent Organic Frameworks as Self-Template Derived Nitrogen-Doped Carbon Nanosheets for Eco-Friendly Metal-Free Catalysis,” Applied Catalysis B: Environmental 244 (2019): 25–35.
  • C.Y. Lin, D. Zhang, Z. Zhao, and Z. Xia, “Covalent Organic Framework Electrocatalysts for Clean Energy Conversion,” Advanced Materials 30, no. 5 (2018): 1703646.
  • X. Han, Q. Xia, J. Huang, Y. Liu, C. Tan, and Y. Cui, “Chiral Covalent Organic Frameworks with High Chemical Stability for Heterogeneous Asymmetric Catalysis,” Journal of the American Chemical Society 139, no. 25 (2017): 8693–7.
  • S. Lu, Y. Hu, S. Wan, R. McCaffrey, Y. Jin, H. Gu, and W. Zhang, “Synthesis of Ultrafine and Highly Dispersed Metal Nanoparticles Confined in a Thioether-Containing Covalent Organic Framework and Their Catalytic Applications,” Journal of the American Chemical Society 139, no. 47 (2017): 17082–8.
  • G. Das, B.P. Biswal, S. Kandambeth, V. Venkatesh, G. Kaur, M. Addicoat, T. Heine, S. Verma, and R. Banerjee, “Chemical Sensing in Two Dimensional Porous Covalent Organic Nanosheets,” Chemical Science 6, no. 7 (2015): 3931–9.
  • Q. Gao, X. Li, G.-H. Ning, K. Leng, B. Tian, C. Liu, W. Tang, H.-S. Xu, and K.P. Loh, “Highly Photoluminescent Two-Dimensional Imine-Based Covalent Organic Frameworks for Chemical Sensing,” Chemical Communications 54, no. 19 (2018): 2349–52.
  • L. Ascherl, E.W. Evans, J. Gorman, S. Orsborne, D. Bessinger, T. Bein, R.H. Friend, and F. Auras, “Perylene-Based Covalent Organic Frameworks for Acid Vapor Sensing,” Journal of the American Chemical Society 141, no. 39 (2019): 15693–9.
  • Chenbao Lu, Jian Yang, Shice Wei, Shuai Bi, Ying Xia, Mingxi Chen, Yang Hou, Ming Qiu, Chris Yuan, Yuezeng Su, et al., “Atomic Ni Anchored Covalent Triazine Framework as High Efficient Electrocatalyst for Carbon Dioxide Conversion,” Advanced Functional Materials 29, no. 10 (2019): 1806884.
  • Mona Calik, Torben Sick, Mirjam Dogru, Markus Döblinger, Stefan Datz, Harald Budde, Achim Hartschuh, Florian Auras, and Thomas Bein, “From Highly Crystalline to Outer Surface-Functionalized Covalent Organic Frameworks: A Modulation Approach,” Journal of the American Chemical Society 138, no. 4 (2016): 1234–9.
  • X. Li, J. Qiao, S.W. Chee, H.-S. Xu, X. Zhao, H.S. Choi, W. Yu, S.Y. Quek, U. Mirsaidov, and K.P. Loh, “Rapid, Scalable Construction of Highly Crystalline Acylhydrazone Two-Dimensional Covalent Organic Frameworks via Dipole-Induced Antiparallel Stacking,” Journal of the American Chemical Society 142, no. 10 (2020): 4932–43.
  • Q. Fang, Z. Zhuang, S. Gu, R.B. Kaspar, J. Zheng, J. Wang, S. Qiu, and Y. Yan, “Designed Synthesis of Large-Pore Crystalline Polyimide Covalent Organic Frameworks,” Nature Communications 5, no. 1 (2014): 1–8.
  • H. Furukawa, and O.M. Yaghi, “Storage of Hydrogen, Methane, and Carbon Dioxide in Highly Porous Covalent Organic Frameworks for Clean Energy Applications,” Journal of the American Chemical Society 131, no. 25 (2009): 8875–83.
  • N. Huang, L. Zhai, H. Xu, and D. Jiang, “Stable Covalent Organic Frameworks for Exceptional Mercury Removal from Aqueous Solutions,” Journal of the American Chemical Society 139, no. 6 (2017): 2428–34.
  • Q. Lu, Y. Ma, H. Li, X. Guan, Y. Yusran, M. Xue, Q. Fang, Y. Yan, S. Qiu, and V. Valtchev, “Postsynthetic Functionalization of Three‐Dimensional Covalent Organic Frameworks for Selective Extraction of Lanthanide Ions,” Angewandte Chemie 130, no. 21 (2018): 6150–6.
  • X.F. Liu, H. Chen, R. Wang, S.Q. Zang, and T.C. Mak, “Cationic Covalent‐Organic Framework as Efficient Redox Motor for High‐Performance Lithium–Sulfur Batteries,” Small 16, no. 34 (2020): 2002932.
  • W. Jiang, D. Peng, W.-R. Cui, R.-P. Liang, and J.-D. Qiu, “Charge-Enhanced Separation of Organic Pollutants in Water by Anionic Covalent Organic Frameworks,” ACS Omega. 5, no. 49 (2020): 32002–10.
  • S. Jansone-Popova, A. Moinel, J.A. Schott, S.M. Mahurin, I. Popovs, G.M. Veith, and B.A. Moyer, “Guanidinium-Based Ionic Covalent Organic Framework for Rapid and Selective Removal of Toxic Cr (VI) Oxoanions from Water,” Environmental Science & Technology 53, no. 2 (2019): 878–83.
  • H. Ma, B. Liu, B. Li, L. Zhang, Y.-G. Li, H.-Q. Tan, H.-Y. Zang, and G. Zhu, “Cationic Covalent Organic Frameworks: A Simple Platform of Anionic Exchange for Porosity Tuning and Proton Conduction,” Journal of the American Chemical Society 138, no. 18 (2016): 5897–903.
  • H.-J. Da, C.-X. Yang, and X.-P. Yan, “Cationic Covalent Organic Nanosheets for Rapid and Selective Capture of Perrhenate: An Analogue of Radioactive Pertechnetate from Aqueous Solution,” Environmental Science & Technology 53, no. 9 (2019): 5212–20.
  • Zonglong Li, Hui Li, Xinyu Guan, Junjie Tang, Yusran Yusran, Zhan Li, Ming Xue, Qianrong Fang, Yushan Yan, Valentin Valtchev, et al., “Three-Dimensional Ionic Covalent Organic Frameworks for Rapid, Reversible, and Selective Ion Exchange,” Journal of the American Chemical Society 139, no. 49 (2017): 17771–4.
  • S. Yang, Q. Zhang, Y. Hu, G. Ding, J. Wang, S. Huo, B. Zhang, and J. Cheng, “Synthesis of s-Triazine Based Tri-Imidazole Derivatives and Their Application as Thermal Latent Curing Agents for Epoxy Resin,” Materials Letters 216 (2018): 127–30.
  • J. Ma, F. Yu, L. Zhou, L. Jin, M. Yang, J. Luan, Y. Tang, H. Fan, Z. Yuan, and J. Chen, “Enhanced Adsorptive Removal of Methyl Orange and Methylene Blue from Aqueous Solution by Alkali-Activated Multiwalled Carbon Nanotubes,” ACS Applied Materials & Interfaces 4, no. 11 (2012): 5749–60.
  • I. Langmuir, “The Adsorption of Gases on Plane Surfaces of Glass, Mica and Platinum,” Journal of the American Chemical Society 40, no. 9 (1918): 1361–403.
  • Wei Wei, Xuan Han, Mengjia Zhang, Yong Zhang, Yong Zhang, and Chunmiao Zheng, “Macromolecular Humic Acid Modified Nano-Hydroxyapatite for Simultaneous Removal of Cu (II) and Methylene Blue from Aqueous Solution: Experimental Design and Adsorption Study,” International Journal of Biological Macromolecules 150 (2020): 849–60.
  • S. Azizian, “Kinetic Models of Sorption: A Theoretical Analysis,” Journal of Colloid and Interface Science 276, no. 1 (2004): 47–52.
  • Y.-S. Ho, and G. McKay, “Pseudo-Second Order Model for Sorption Processes,” Process Biochemistry 34, no. 5 (1999): 451–65.
  • H.N. Tran, S.-J. You, A. Hosseini-Bandegharaei, and H.-P. Chao, “Mistakes and Inconsistencies regarding Adsorption of Contaminants from Aqueous Solutions: A Critical Review,” Water Research 120 (2017): 88–116.
  • T. Chen, B. Li, W. Huang, C. Lin, G. Li, H. Ren, Y. Wu, S. Chen, W. Zhang, H.J.S. Ma, et al., “Highly Crystalline Ionic Covalent Organic Framework Membrane for Nanofiltration and Charge-Controlled Organic Pollutants Removal,” Separation and Purification Technology 256 (2021): 117787.
  • W. Zhang, L. Zhang, H. Zhao, B. Li, and H.J.J.O.M.C.A. Ma, “A Two-Dimensional Cationic Covalent Organic Framework Membrane for Selective Molecular Sieving,” Journal of Materials Chemistry A 6, no. 27 (2018): 13331–9.
  • S.-X. Xu, Z.-Q. Yao, and Y.-H.J.E.P.J. Zhang, “A Covalent Organic Framework Exhibiting Amphiphilic Selective Adsorption toward Ionic Organic Dyes Tuned by pH Value,” European Polymer Journal 133 (2020): 109764.
  • S.-B. Yu, H. Lyu, J. Tian, H. Wang, D.-W. Zhang, Y. Liu, and Z.-T.J.P.C. Li, “A Polycationic Covalent Organic Framework: A Robust Adsorbent for Anionic Dye Pollutants,” Polymer Chemistry 7, no. 20 (2016): 3392–7.
  • Y. He, W. Bao, Y. Hua, Z. Guo, X. Fu, B. Na, D. Yuan, C. Peng, and H.J.R.A. Liu, “Efficient Adsorption of Methyl Orange and Methyl Blue Dyes by a Novel Triptycene-Based Hyper-Crosslinked Porous Polymer,” RSC Advances 12, no. 9 (2022): 5587–94.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.