[1] I. S. Ali, O. Y. T. Al-Janabi, E. T. Al-Tikrity, and P. J. Foot, "Adsorptive desulfurization of model and real fuel via wire-, rod-, and flower-like Fe3O4@ MnO2@ activated carbon made from palm kernel shells as newly designed magnetic nanoadsorbents," Fuel, vol. 340, p. 127523, May 2023.
[2] S. Watanabe, X. Ma, and C. Song, "Adsorptive desulfurization of jet fuels over TiO2-CeO2 mixed oxides: role of surface Ti and Ce cations," Catalysis Today, vol. 371, pp. 265-275, July 2021.
[3] A. Haruna, Z. M. A. Merican, S. G. Musa, and S. Abubakar, "Sulfur removal technologies from fuel oil for safe and sustainable environment," Fuel, vol. 329, p. 125370, December 2022.
[4] R. A. Omar and N. Verma, "Review of Adsorptive Desulfurization of Liquid Fuels and Regeneration Attempts," Industrial & Engineering Chemistry Research, vol. 61, no. 25, pp. 8595-8606, June 2022.
[5] X. Ren,
Z. Liu,
L. Dong,
G. Miao, N. Liao, Z. Li and J. Xiao, "Dynamic catalytic adsorptive desulfurization of real diesel over ultra‐stable and low‐cost silica gel‐supported TiO2,"
AIChE Journal, vol. 64, no. 6, pp. 2146-2159, June 2018.
[6] B. D. Radhi and W. T. Mohammed, "TiO2 loading on activated carbon: preparation, characterization, desulfurization performance and isotherm of the adsorption of dibenzothiophene from model fuel," Egyptian Journal of Chemistry, vol. 66, no. 7, pp. 428-437, July 2023.
[7] A. E. S. Choi, S. Roces, N. Dugos, and M.-W. Wan, "Adsorption of benzothiophene sulfone over clay mineral adsorbents in the frame of oxidative desulfurization," Fuel, vol. 205, pp. 153-160, October 2017.
[8] E. Karakhanov, A. Akopyan,
O. Golubev, A. Anisimov,
A. Glotov, A. Vutolkina and A. Maximov, "Alkali earth catalysts based on mesoporous MCM-41 and Al-SBA-15 for sulfone removal from middle distillates,"
ACS omega, vol. 4, no. 7, pp. 12736-12744, July 2019.
[9] M. Chen, J. Cui, Y. Wang, C. Wang, Y. Li, C. Fan, M. Tian, M. Xu and W. Yang, "Amine modified nano-sized hierarchical hollow system for highly effective and stable oxidative-adsorptive desulfurization," Fuel, vol. 266, p. 116960, April 2020.
[10] M. Yaseen, S. Ullah, W. Ahmad, S. Subhan, and F. Subhan, "Fabrication of Zn and Mn loaded activated carbon derived from corn cobs for the adsorptive desulfurization of model and real fuel oils," Fuel, vol. 284, p. 119102, January 2021.
[11] B. Saha, S. Vedachalam, and A. K. Dalai, "Review on recent advances in adsorptive desulfurization," Fuel Processing Technology, vol. 214, p. 106685, April 2021.
[12] M. O. Azeez and S. A. Ganiyu, "Review of biomass derived-activated carbon for production of clean fuels by adsorptive desulfurization: Insights into processes, modifications, properties, and performances," Arabian Journal of Chemistry, p. 105182, July 2023.
[13] G. I. Danmaliki and T. A. Saleh, "Effects of bimetallic Ce/Fe nanoparticles on the desulfurization of thiophenes using activated carbon," Chemical engineering journal, vol. 307, pp. 914-927, January 2017.
[14] S. S. Shakir, N. Jassim, and S. Dakhil, "Desulfurization of Fuel by Activated Carbon Prepared from Trees Residues," Journal of Mechanical Engineering Research and Developments, vol. 44, no. 4, pp. 110-122, March 2021.
[15] E. S. Moosavi, R. Karimzadeh, and S. Dastgheib, "Adsorption of dibenzothiophene by copper-and copper oxide-impregnated activated carbon fibers," 7th International Chemical Engineering Congress & Exihibition, Kish, Iran, 21-24 November, 2011.
[16] E. S. Moosavi, S. A. Dastgheib, and R. Karimzadeh, "Adsorption of thiophenic compounds from model diesel fuel using copper and nickel impregnated activated carbons," Energies, vol. 5, no. 10, pp. 4233-4250, October 2012.
[17] S. K. Thaligari, V. C. Srivastava, and B. Prasad, "Adsorptive desulfurization by zinc-impregnated activated carbon: characterization, kinetics, isotherms, and thermodynamic modeling," Clean Technologies and Environmental Policy, vol. 18, pp. 1021-1030, April 2016.
[18] J. Xiao, Z. Li, B. Liu, Q. Xia, and M. Yu, "Adsorption of benzothiophene and dibenzothiophene on ion-impregnated activated carbons and ion-exchanged Y zeolites," Energy & Fuels, vol. 22, no. 6, pp. 3858-3863, November 2008.
[19] T. A. Saleh, K. O. Sulaiman, S. A. Al-Hammadi, H. Dafalla, and G. I. Danmaliki, "Adsorptive desulfurization of thiophene, benzothiophene and dibenzothiophene over activated carbon manganese oxide nanocomposite: with column system evaluation," Journal of cleaner production, vol. 154, pp. 401-412, June 2017.
[20] E. Moosavi, D. Hajian, and R. Karimzadeh, "Adsorption Kinetics and Equilibrium of Model Fuel Desulfurization by Activated Carbon Synthesized from Rose Damascena Waste," Fuel and Combustion, vol. 14, no. 4, pp. 19-36, February 2022. (in Persian)
[21] T. A. Saleh and G. I. Danmaliki, "Influence of acidic and basic treatments of activated carbon derived from waste rubber tires on adsorptive desulfurization of thiophenes," Journal of the Taiwan Institute of Chemical Engineers, vol. 60, pp. 460-468, March 2016.