36
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Development of low-cost adsorbents derived from sludge of groundwater treatment for gaseous hydrogen sulfide removal

ORCID Icon, ORCID Icon, , , ORCID Icon, ORCID Icon, , ORCID Icon & ORCID Icon show all
Pages 3707-3719 | Received 23 Oct 2023, Accepted 11 Feb 2024, Published online: 13 Mar 2024

References

  • Ahmad, W., S. Sethupathi, G. Kanadasan, L. C. Lau, and R. Kanthasamy. A review on the removal of hydrogen sulfide from biogas by adsorption using sorbents derived from waste. Reviews in Chemical Engineering. 2021. 37 (3):407–31. Available from doi:10.1515/revce-2018-0048.
  • Ajenifuja, E., J. A. Ajao, and E. O. B. Ajayi. Adsorption isotherm studies of Cu(II) and Co(II) in high concentration aqueous solutions on photocatalytically modified diatomaceous ceramic adsorbents. Applied Water Science. 2017. 7 (7):3793–801. Available from doi:10.1007/s13201-017-0527-3.
  • Alguacil, F. J. Recent advances in H2S removal from gas streams. Applied Science. 2023. 13:3217. Available from. doi:10.3390/app13053217.
  • Bagreev, A., D. C. Locke, and T. J. Bandosz. H2S adsorption/oxidation on adsorbents obtained from pyrolysis of sewage-sludge-derived fertilizer using zinc chloride activation. Industrial & Engineering Chemistry Research. 2001. 40:3502–10. Available from. doi:10.1021/ie010165w.
  • Bukhary, S., J. Batista, and S. Ahmad. Design aspects, energy consumption evaluation, and offset for drinking water treatment operation. Water. 2020. 12 (6):1772. Available from doi:10.3390/w12061772.
  • Cam, T. S., N. P. Q. Anh, B. N. M. Duc, N. T. Thuy, J. Lei, N. T. Thanh, and N. N. Huy. Synthesis of inexpensive ternary metal oxides by a co‐precipitation method for catalytic oxidation of carbon monoxide. Chemistry – an Asian Journal.2023. 18 (22): Available from. doi:10.1007/s10971-023-06206-7.
  • COD ID 1547350. Crystallography open database. 2023. Available from: https://www.crystallography.net/cod/result.php.
  • Conejeros, S., P. Alemany, M. Llunell, I. D. P. R. Moreira, V. Sánchez, and J. Llanos. Electronic structure and magnetic properties of CuFeS2. Inorganic Chemistry. 2015. 54 (10):4840–49. Available from doi:10.1021/acs.inorgchem.5b00399.
  • Georgiadis, A., N. Charisiou, and M. Goula. Removal of hydrogen sulfide from various industrial gases: A review of the most promising adsorbing materials. Catalysts. 2020. 10 (5):521. Available from doi:10.3390/catal10050521.
  • Hien, L. P. T., L. T. A. Huy, P. D. Thanh, L. T. K. Thi, B. K. Le, L. N. D. Khoa, D. Q. Vinh, T. D. Vi, P. H. Hai, V. T. T. Thuy, et al. Preparation of activated red mud and its application for removal of hydrogen sulfide in air. VNUHCM Journal of Engineering Technology. 2019. 3 (2):SI40–45. Available from. doi:10.32508/stdjet.v3i2.474.
  • Ishizawa, N., H. Setoguchi, and K. Yanagisawa. Structural evolution of calcite at high temperatures: Phase V unveiled. Scientific Reports. 2013. 3:2832. Available from. doi:10.1038/srep02832.
  • Khabazipour, M., and M. Anbia. Removal of hydrogen sulfide from gas streams using porous materials: A review. Industrial & Engineering Chemistry Research. 2019. 58 (49):22133–64. Available from doi:10.1021/acs.iecr.9b03800.
  • Papurello, D., A. Lanzini, M. Bressan, and M. Santarelli. H2S removal with sorbent obtained from sewage sludges. Processes. 2020. 8 (2):130. Available from doi:10.3390/pr8020130.
  • Piccin, J. S., G. L. Dotto, and L. A. A. Pinto. Adsorption isotherms and thermochemical data of FD&C red n° 40 binding by chitosan. Brazilian Journal of Chemical Engineering. 2011. 28:295–304. Available from. doi:10.1590/S0104-66322011000200014.
  • Polruang, S., P. Banjerdkij, and S. Sirivittayapakorn. Use of drinking water sludge as adsorbent for H2S gas removal from biogas. EnvironmentAsia. 2017. 10:73–80. Available from. doi:10.14456/ea.2017.9.
  • Pudi, A., M. Rezaei, V. Signorini, M. P. Andersson, M. G. Baschetti, and S. S. Mansouri. Hydrogen sulfide capture and removal technologies: A comprehensive review of recent developments and emerging trends. Separation and Purification Technology. 2022. 298:121448. Available from. doi:10.1016/j.seppur.2022.121448.
  • Ragadhita, R., and A. B. D. Nandiyanto. How to calculate adsorption isotherms of particles using two-parameter monolayer adsorption models and equations. Indonesian Journal of Science and Technology. 2021. 6 (1):205–34. Available from doi:10.17509/ijost.v6i1.32354.
  • Ren, B., N. Lyczko, Y. Zhao, and A. Nzihou. Alum sludge as an efficient sorbent for hydrogen sulfide removal: Experimental, mechanisms and modeling studies. Chemosphere. 2020. 248:126010. Available from. doi:10.1016/j.chemosphere.2020.126010.
  • Ros, A., M. A. Montes-Moran, E. Fuente, D. M. Nevskaia, and M. J. Martin. Dried sludges and sludge-based chars for H2S removal at low temperature: Influence of sewage sludge characteristics. Environmental Science & Technology. 2006. 40 (1):302–09. Available from doi:10.1021/es050996j.
  • Saleh, T. A. Isotherm models of adsorption processes on adsorbents and nanoadsorbents. 2022. 99–126. Available from doi: 10.1016/B978-0-12-849876-7.00009-9.
  • Shahbeig, H., N. Bagheri, S. A. Ghorbanian, Hallajisani, A., and S. Poorkarimi. A new adsorption isotherm model of aqueous solutions on granular activated carbon. World Journal of Modelling and Simulation. 2013. 9: 243–54. Available from http://www.wjms.org.uk/.
  • Tarachand, T., S. Hussain, N. P. Lalla, Y.-K. Kuo, A. Lakhani, V. G. Sathe, U. Deshpande, and G. S. Okram. Thermoelectric properties of Ag-doped CuS nanocomposites synthesized by a facile polyol method. Physical Chemistry Chemical Physics: PCCP. 2018. 20 (8):5926–35. Available from doi:10.1039/C7CP07986A.
  • Wang, J., and X. Guo. Adsorption isotherm models: Classification, physical meaning, application and solving method. Chemosphere. 2020. 258:127279. Available from. doi:10.1016/j.chemosphere.2020.127279.
  • Wang, X., W. Zhang, Q. Gao, Y. Wang, J. Zhang, J. Zhou, Q. Liu, and G. Qian. A critical role of benzoquinone basic group in catalytic oxidation of H2S by sewage sludge-derived catalyst. Applied Surface Science. 2019. 470:1010–17. Available from. doi:10.1016/j.apsusc.2018.11.172.
  • Wang, L., K. Zhang, Z. Hu, W. Duan, F. Cheng, and J. Chen. Porous CuO nanowires as the anode of rechargeable Na-ion batteries. Nano Research. 2014. 7 (2):199–208. Available from doi:10.1007/s12274-013-0387-6.
  • Yin, R., Y. Wang, J. Zhang, J. Zhou, Q. Liu, and G. Qian. Continuous oxidation of hydrogen sulfide by an adsorbent derived from sewage sludge. Environmental Engineering Science. 2019. 36(9):1170–78. Available from. 10.1089/ees.2018.0539.

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.