Cationic organic dyes adsorption on few-layer graphene produced by self-propagating high-temperature synthesis
https://doi.org/10.17586/2220-8054-2026-17-3-357-366
Abstract
The effectiveness of carbon nanomaterials in purifying water from organic dyes has been proven over the previous decade. However, the problem of industrial application of carbon nanomaterials has not yet been solved. This is primarily due to the high cost and low productivity of carbon nanomaterials synthesis methods. This article presents the thermodynamic and kinetic data of rhodamine 6G and methylene blue adsorption on few-layer graphene. Few-layer graphene was obtained by self-propagating high-temperature synthesis from cellulose. It is a promising method which is inexpensive and easy to scale. It was found that the studied few-layer graphene has a high adsorption capacity for both dyes, and the obtained values of adsorption capacity are higher than most of the studied carbon materials, such as carbon nanotubes or activated carbon. The most common adsorption models were used to describe the thermodynamics of the process. The kinetics of the process are described by a pseudo-second-order equation, which is quite common in graphene materials. The proposed adsorption mechanism is based on hydrophobic interaction between adsorbent and adsorbate with the formation of H-π and π–π bonds.
About the Authors
N. D. PodlozhnyukRussian Federation
Nikita D. Podlozhnyuk
Politekhnicheskaya, 26, St. Petersburg, 194064
A. A. Vozniakovskii
Russian Federation
Aleksei A. Vozniakovskii
Politekhnicheskaya, 26, St. Petersburg, 194064
A. P. Voznyakovskii
Russian Federation
Alexander P. Voznyakovskii
Gapsalskaya, 1, St. Petersburg, 198035
S. V. Kidalov
Russian Federation
Sergey V. Kidalov
Politekhnicheskaya, 26, St. Petersburg, 194064
References
1. Zu¨mriye A. Application of biosorption for the removal of organic pollutants: a review. Process Biochemistry, 2005, 40(3), P. 997–1026.
2. Tkaczyk A., Mitrowska K., Posyniak A. Synthetic organic dyes as contaminants of the aquatic environment and their implications for ecosystems: A review. Science of The Total Environment, 2020, 717, P. 137222.
3. Daniel C. W., Hu J., Liu M. Y., Zhang W., Lai K., Lo I. Activated Carbon Produced from Waste Wood Pallets: Adsorption of Three Classes of Dyes. Water Air Soil Pollut, 2007, 184, P. 141–155.
4. P’yanova L.G., Kornienko N.V., Sedanova A.V., Lavrenov A.V. Adsorption of alizarin red onto carbon black. Russian journal of applied chemistry, 2021, 94(5), P. 601–606.
5. Mingfei Z., Peng L. Adsorption of methylene blue from aqueous solutions by modified expanded graphite powder. Desalination, 2009, 249(1), P. 331–336.
6. Yunjin Y., Feifei X., Ming C., Zhongxiao X., Zhiwen Z. Adsorption behavior of methylene blue on carbon nanotubes. Bioresource Technology, 2010, 101(9), P. 3040–3046.
7. Hamdaoui O. Batch study of liquid-phase adsorption of methylene blue using cedar sawdust and crushed brick. Journal of Hazardous Materials, 2006, 135(1), P. 264–273.
8. Liu T., Li Y., Dua Q., Suna J., Jiao Y., Yanga G., Wang Z., Xia Y., Zhang W., Wang K., Zhu H., Wu D. Adsorption of methylene blue from aqueous solution by graphene. Colloids and Surfaces B: Biointerfaces, 2012, 90, P. 197–203.
9. Subba Reddy Y., Maria Magdalane C., Kaviyarasu K., Tessema Mola G., Kennedy J., Maaza M. Equilibrium and kinetic studies of the adsorption of acid blue 9 and Safranin O from aqueous solutions by MgO decked FLG coated Fuller’s earth. Journal of Physics and Chemistry of Solids, 2018, 123, P. 43–51.
10. Kong L., Enders A., Rahman T.S., Dowben P. A. Molecular adsorption on graphene. J. Phys. Condens. Matter, 2014, 26, P. 443001.
11. Kulakova I.I., Lisichkin G.V. Prospects for using graphene nanomaterials: sorbents, membranes, and gas sensors. Russian Journal of Applied Chemistry, 2021, 94(9), P. 1177–1188.
12. Zhao J., Wang Z., White J. C., Xing B. Graphene in the Aquatic Environment: Adsorption, Dispersion, Toxicity and Transformation Environ. Sci. Technol, 2014, 48(17), P. 9995–10009.
13. Xu J., Cao Z., Zhang Y., Yuan Z., Lou Z., Xu X., Wang X. A review of functionalized carbon nanotubes and graphene for heavy metal adsorption from water: Preparation, application, and mechanism, Chemosphere, 2018, 195, P. 351–364.
14. Whitener K.E., Sheehan E. Graphene synthesis. Diamond and Related Materials, 2014, 46, P. 25–34.
15. Chernova E.A., Gurianov K.E., Brotsman V.A., Valeev R.G., Kapitanova O.O., Berekchiian M.V., Lukashin A.V. Comparative study of transport properties of membranes based on graphene oxide prepared by Brodie and improved Hummers’ methods. Nanosystems: Physics, Chemistry, Mathematics, 2023, 14(2), P. 272–278.
16. Voznyakovskii A.A., Vozniakovskii A.P., Kidalov S.V. New Way of Synthesis of Few-Layer Graphene Nanosheets by the Self Propagating High-Temperature Synthesis Method from Biopolymers. Nanomaterials, 2022, 12(4), P. 657.
17. Vozniakovskii A.P.,Kidalov S.V., Vozniakovskii A.A., Karmanov A.P., Kocheva L. S., Rachkova N. Carbon nanomaterials based on plant biopolymers as radionuclides sorbent. Fullerenes, Nanotubes, Carbon Nanostruct, 2020, 28(3), P. 238–241.
18. Voznyakovskii A.P., Karmanov A.P., Kocheva L.S., Neverovskaya A.Y., Vozniakovskii A.A., Kanarskii A.V., Semenov E.I., Kidalov S.V. Few-Layer Graphene Structures as a Promising Mycotoxin Sorbent. Technical Physics, 2022, 92(7), P. 805–810.
19. Podlozhnyuk N.D., Vozniakovskii A.A., Vozniakovskii A.P., Kidalov S.V., Bogacheva E.A. Adsorption of Rhodamine G from Aqueous Solutionsonto Particles of Few-Layer Graphene Preparedby Self-Propagating High-Temperature Synthesis. Russian Journal of Applied Chemistry, 2023, 96(2), P. 198–204.
20. Vozniakovskii A.A., Voznyakovskii A.P., Kidalov S.V., Osipov V. Structure and paramagnetic properties of graphene nanoplatelets prepared from biopolymers using self-propagating high-temperature synthesis. J. Struct. Chem, 2020, 65, P. 869–878.
21. Jiang K.C., Xin S., Lee J.S., Kim J., Xiao X.L., Guo Y.G. Improved kinetics of LiNi1/3Mn1/3Co1/3O2 cathode material through reduced graphene oxide networks. Phys. Chem. Chem. Phys, 2012, 14, P. 2934–2939
22. Yan H., Tao X., Yang Z., Li K., Yang H., Li A., Effects of the oxidation degree of graphene oxide on the adsorption of methylene blue. Journal of Hazardous Materials, 2014, 268, P. 191–198
23. Ferrari C., Meyer J.C., Scardaci V., Casiraghi C., Lazzeri M., Mauri F., Piscanec S., Jiang D., Novoselov K.S., Geim A.K. Raman Spectrum of Graphene and Graphene Layers. Phys. Rev. Lett, 2006, 97, P. 187401.
24. Naresh Muthu R. Synthesis and characterization of one pot electrochemical graphene for supercapacitor applications. Nanosystems: Physics, Chemistry, Mathematics, 2023, 14(3), P. 380–389.
25. Voznyakovskii A.A., Neverovskaya A., Vozniakovskii A.P., Kidalov S.V. A Quantitative Chemical Method for Determining the Surface Concentration of Stone–Wales Defects for 1D and 2D Carbon Nanomaterials. Nanomaterials, 2022, 12(5), P. 883.
26. Puskar L., Petit T. FTIR spectroscopy of nanodiamonds: Methods and interpretation. Diamond and Related Materials, 2018, 89, P. 52–62.
27. Yang Sh.T., Chen Sh., Chang Y., Cao A., Liu Y., Wang H. Removal of methylene blue from aqueous solution by graphene oxide. Journal of Colloid and Interface Science, 2011, 359(1), P. 24–29.
28. Lopez Arbeloa F., Llona Gonzalez I., Ruiz Ojeda P., Lopez Arbeloa I. Aggregate formation of rhodamine 6G in aqueous solution. J. Chem. Soc, 1982, 78, P. 989–994.
29. Zhang X., Liu D., Yang L., Zhou L., You T. Self-assembled three-dimensional graphene-based materials for dye adsorption and catalysis. J. Mater. Chem. A, 2015, 3, P. 10031–10037.
30. Zhang L., Liu Y., Wang S., Liu B., Peng J. Selective removal of cationic dyes from aqueous solutions by an activated carbon-based multicarboxyl adsorbent. RSC Adv, 2015, 5, P. 99618–99626.
31. Tabassum M., Bardhan M., Novera T.M., Md. Atikul Islam, Ali Hadi Jawad, Md. Azharul Islam. NaOH-Activated Betel Nut Husk Hydrochar for Efficient Adsorption of Methylene Blue Dye. Water Air Soil Pollut, 2020, 231, P. 398.
32. Zhang L., Tub L., Liang Y., Chen Q., Li Z., Li C., Wang Z., Li W. Coconut-based activated carbon fibers for efficient adsorption of various organic dyes. RSC Adv, 2018, 8, P. 42280–42291.
33. Kulkarni D.D., Kodiyath R., Xu W., Choi I., Tsukruk V.V. Competitive Adsorption of Dopamine and Rhodamine 6G on the Surface of Graphene Oxide. ACS Appl. Mater. Interfaces, 2014, 6, P. 2459–2470.
34. Geng Z., Lin Y., Yu X., Shen Q., Ma L., Li Z., Pan N., Wang X. Highly efficient dye adsorption and removal: a functional hybrid of reduced graphene oxide–Fe3O4 nanoparticles as an easily regenerative adsorbent. J. Mater. Chem, 2012, 22, P. 3527–3535.
35. Langmuir I. The adsorption of gases on plane surfaces of glass, mica and platinum. J. Am. Chem. Soc, 1918, 40(9), P. 1361–1403.
36. Shams K., Sidqi A., Kamal M., Patil S. Surfactant adsorption isotherms: a review. ACS Omega, 2021, 6(48), P. 32342–32348.
37. Freundlich H. U¨ ber die Adsorption in Lo¨sungen. Zeitschrift fu¨r physikalische chemie, 1907, 57(1), P. 385–470.
38. Temkin M., Pyzhev, V. Recent Modifications to Langmuir Isotherms. Acta Physiochim URSS, 1940, 12, P. 217–225.
39. Dong Z., Wang D., Liu X., Pei X., Chena L., Jin J. Bio-inspired surface-functionalization of graphene oxide for the adsorption of organic dyes and heavy metal ions with a superhigh capacity. J. Mater. Chem. A, 2014, 2, P. 5034–5040.
40. Sumalinog G., Capareda S.C., M.D.G. de Luna. Evaluation of the effectiveness and mechanisms of acetaminophen and methylene blue dye adsorption on activated biochar derived from municipal solid wastes. Journal of Environmental Management, 2018, 210, P. 255–262.
Review
For citations:
Podlozhnyuk N.D., Vozniakovskii A.A., Voznyakovskii A.P., Kidalov S.V. Cationic organic dyes adsorption on few-layer graphene produced by self-propagating high-temperature synthesis. Nanosystems: Physics, Chemistry, Mathematics. 2026;17(3):357-366. https://doi.org/10.17586/2220-8054-2026-17-3-357-366
JATS XML
