References

  1. P. Hadi, M. Xu, C. Ning, C. Sze Ki Lin, G. McKay, A critical review on preparation, characterization and utilization of sludge-derived activated carbons for wastewater treatment, Chem. Eng. J., 260 (2015) 895–906.
  2. X.H. Dai, Thoughts on the necessity and urgency of stabilizing sludge treatment in urban sewage treatment plants, Water Wastewater Eng., 53 (2017) 1–5 (in Chinese).
  3. N. Wang, Q.W. Liu, Y. Zhi, L. Cheng, B.J. Ma, Y.X. Mao, Spatial and temporal variation of mercury in municipal sewage sludge in China, Environ. Sci., 39 (2018) 2296–2305.
  4. E. Peruzzi, G. Masciandaro, C. Macci, S. Doni, S.G.M. Ravelo, P. Peruzzi, B. Ceccanti, Heavy metal fractionation and organic matter stabilization in sewage sludge treatment wetlands, Ecol. Eng., 37 (2010) 771–778.
  5. X.H. Dai, C.L. Hu, D. Zhang, Y.G. Chen, A new method for the simultaneous enhancement of methane yield and reduction of hydrogen sulfide production in the anaerobic digestion of waste activated sludge, Bioresour. Technol., 243 (2017) 914–921.
  6. S. Werle, R. Wilk, A review of methods for the thermal utilization of sewage sludge: the Polish perspective, Renewable Energy, 35 (2010) 1914–1919.
  7. K. Gondek, M. Mierzwa-Hersztek, M. Kope, Mobility of heavy metals in sandy soil after application of composts produced from maize straw, sewage sludge and biochar, J. Environ. Manage., 210 (2018) 87–95.
  8. J.H. Li, M. Zhang, Z.Y. Ye, C.M. Yang, Effect of manganese oxide-modified biochar addition on methane production and heavy metal speciation during the anaerobic digestion of sewage sludge, J. Environ. Sci., 76 (2018) 267–277.
  9. H. Lian, Sludge Disposal Status and Control Countermeasures, 2016 Sludge Summit Forum, 3rd ed., Henan, Zhengzhou, 2016 (in Chinese).
  10. N. Mu’Azu, N. Jarrah, M. Zubair, O. Alagha, Removal of phenolic compounds from water using sewage sludge-based activated carbon adsorption: a review, Int. J. Environ. Res Public Health, 14 (2017) 1–34.
  11. M.A. Franciski, E.C. Peres, M. Godinho, D. Perondi, E.L. Foletto, G.C. Collazzo, G.L. Dotto, Development of CO2 activated biochar from solid wastes of a beer industry and its application for methylene blue adsorption, Waste Manage., 78 (2018) 630–638.
  12. A.F.M. Streit, L.N. Côrtes, S.P. Druzian, M. Godinho, G.C. Collazzo, D. Perondi, G.L. Dotto, Development of highquality activated carbon from biological sludge and its application for dyes removal from aqueous solutions, Sci. Total Environ., 660 (2019) 277–287.
  13. W. Hao, F. Björnerbäck, Y. Trushkina, M.O. Bengoechea, N. Hedin, High-performance magnetic activated carbon from solid waste from lignin conversion processes. Part I: their use as adsorbents for CO2, Energy Procedia, 114 (2017) 6272–6296.
  14. A. Raheem, V.S. Sikarwar, J. He, W. Dastyar, D.D. Dionysiou, W. Wang, M. Zhao, Opportunities and challenges in sustainable treatment and resource reuse of sewage sludge: a review, Chem. Eng. J., 337 (2018) 616–641.
  15. W. Bae, J. Kim, J. Chung, Production of granular activated carbon from food-processing wastes (walnut shells and jujube seeds) and its adsorptive properties, J. Air Waste Manage., 64 (2014) 879–886.
  16. A.M. Abioye, F.N. Ani, Recent development in the production of activated carbon electrodes from agricultural waste biomass for supercapacitors: a review, Renewable Sustainable Energy Rev., 52 (2015) 1282–1293.
  17. F. Zeng, X. Liao, D. Pan, H. Shi, Adsorption of dissolved organic matter from landfill leachate using activated carbon prepared from sewage sludge and cabbage by ZnCl2, Environ. Sci. Pollut. Res. Int., 27 (2020) 4891–4904.
  18. H.B. Feng, H. Hu, H. Dong, Hierarchical structured carbon derived from bagasse wastes: a simple and efficient synthesis route and its improved electrochemical properties for highperformance supercapacitors, J. Power Sources, 302 (2016) 164–173.
  19. Y. Liu, Q. Chen, Z. Niu, X. Wang, Y. Lei, K. Yang, Preparation of peanut hull sludge-based activated carbon and application for oily wastewater treatment, Environ. Pollut. Control, 38 (2016) 43–47.
  20. S. Zhang, L. Tao, M. Jiang, G. Gou, Z. Zhou, Single-step synthesis of magnetic activated carbon from peanut shell, Mater. Lett., 157 (2015) 281–284.
  21. J. Kazmierczak-Razna, B. Gralak-Podemska, P. Nowicki, R. Pietrzak, The use of microwave radiation for obtaining activated carbons from sawdust and their potential application in removal of NO2 and H2S, Chem. Eng. J., 269 (2015) 352–358.
  22. G. Tan, W. Sun, Y. Xu, H. Wang, N. Xu, Sorption of mercury(II) and atrazine by biochar, modified biochars and biochar based activated carbon in aqueous solution, Bioresour. Technol., 211 (2016) 727–735.
  23. X. Zhao, W. Ouyang, F. Hao, C. Lin, F. Wang, S. Han, X. Geng, Properties comparison of biochars from corn straw with different pretreatment and sorption behaviour of atrazine, Bioresour. Technol., 147 (2013) 338–344.
  24. F.J. Gutiérrez Ortiz, P.G. Aguilera, P. Ollero, Biogas desulfurization by adsorption on thermally treated sewage-sludge, Sep. Purif. Technol., 123 (2014) 200–213.
  25. M. Seredych, T.J. Bandosz, Desulfurization of digester gas on catalytic carbonaceous adsorbents: complexity of interactions between the surface and components of the gaseous mixture, Ind. Eng. Chem. Res., 45 (2006) 3658–3665.
  26. W. Xie, L. Chang, Y.U. Jianglong, K. Xie, Research progress of removal of H2S from coal gas by dry method, J. Chem. Ind. Eng., 9 (2012) 2012–2020.
  27. F. Zeng, X. Liao, H. Hu, L. Liao, Effect of KOH activation in the desulfurization process of activated carbon prepared by sewage sludge and corn straw, J. Air Waste Manage., 68 (2017) 255–264.
  28. F. Zeng, X. Liao, L. Liao, H. Hu, Mechanism and performance of preparation of compositional sewage sludge and corn straw-derived activated carbon with KOH, Desal. Water Treat., 108 (2018) 97–105.
  29. F. Zeng, X. Liao, Y. Li, Y. He, L. Liao, H. Hu, Preparation of sludge-straw-based activated carbon and its adsorption of H2S, Acta Sci. Circumstantiae, 37 (2017) 4269–4276.
  30. A. Bagreev, S. Bashkova, D.C. Locke, T.J. Bandosz, Sewage sludge-derived materials as efficient adsorbents for removal of hydrogen sulfide, Environ. Sci. Technol., 35 (2001) 1537–1543.
  31. A. Ansari, A. Bagreev, T.J. Bandosz, Effect of adsorbent composition on H2S removal on sewage sludge-based materials enriched with carbonaceous phase, Carbon, 43 (2005) 1039–1048.
  32. R. Wallace, M. Seredych, P. Zhang, T.J. Bandosz, Municipal waste conversion to hydrogen sulfide adsorbents: investigation of the synergistic effects of sewage sludge/fish waste mixture, Chem. Eng. J., 237 (2014) 88–94.
  33. X. Wang, W. Zhang, Q. Gao, Y. Wang, J. Zhang, J. Zhou, Q. Liu, G. Qian, A critical role of benzoquinone basic group in catalytic oxidation of H2S by sewage sludge-derived catalyst, Appl. Surf. Sci., 470 (2019) 1010–1017.
  34. A. Bagreev, T.J. Bandosz, H2S adsorption/oxidation on materials obtained using sulfuric acid activation of sewage sludgederived fertilizer, J. Colloid Interface Sci., 252 (2002) 188–194.
  35. H. Liu, Fabrication and Modification of Activated Carbons from Biomass in Constructed Wetland and Their Adsorption Mechanisms Towards Heavy Metal Ions, Shan Dong University, 2017 (in Chinese).
  36. Y.B. Zhai, Academic Research on Adsorbent Derived from Sewage Sludge Based on Chemical Activation Method and Its Application, Hunan University, 2005 (in Chinese).
  37. X.Y. Ge, Microwave-Assisted Modification of Coal-Based Activated Carbon and Studies on PAHs Adsorption Properties, Shihezi University, 2016 (in Chinese).
  38. Y. Chen, X. Lai, Preparation and performance evaluation of iron oxide/activated carbon supported hydrogen sulfide scavenger, Ind. Catal., 22 (2014) 680–682.
  39. C.S. Zhang, W.J. Wang, H.J. Su, Z.B. Wang, E.B. Wang, Desulfurization of biogas by modified activated carbon and its regeneration, Mod. Chem. Ind., 36 (2016) 59–62.
  40. S. Pipatmanomai, S. Kaewluan, T. Vitidsant, Economic assessment of biogas-to-electricity generation system with H2S removal by activated carbon in small pig farm, Appl. Energy, 86 (2009) 669–674.
  41. K.S.W. Sing, Reporting physisorption data for gas/solid systems with special reference to the determination of surface area and porosity, Pure Appl. Chem., 57 (1985) 603–619.
  42. S. Bashkova, F.S. Baker, X. Wu, T.R. Armstrong, V. Schwartz, Activated carbon catalyst for selective oxidation of hydrogen sulphide: on the influence of pore structure, surface characteristics, and catalytically-active nitrogen, Carbon, 45 (2007) 1354–1363.
  43. D.V. Brazhnyk, Y.P. Zaitsev, I.V. Bacherikova, V.A. Zazhigalov, J. Stoch, A. Kowal, Oxidation of H2S on activated carbon KAU and influence of the surface state, Appl. Catal., B, 70 (2007) 557–566.
  44. S.B. Kanungo, S.K. Mishra, Thermal dehydration and decomposition of FeCl3× H2O, J. Therm. Anal., 46 (1996) 1487–1500.
  45. D. Wang, Q. Ma, P. Yang, Synthesis of Fe3O4 nanoparticles with tunable and uniform size through simple thermal decomposition, J. Nanosci. Nanotechnol., 12 (2012) 6432–6438.
  46. Z. Yang, Y. Li, X. Zhang, X. Cui, S. He, H. Liang, A. Ding, Sludge activated carbon-based CoFe2O4-SAC nanocomposites used as heterogeneous catalysts for degrading antibiotic norfloxacin through activating peroxymonosulfate, Chem. Eng. J., 384 (2020), doi: 10.1016/j.cej.2019.123319.
  47. L. Gu, H. Guo, P. Zhou, N. Zhu, D. Zhang, H. Yuan, Z. Lou, Enhanced adsorptive removal of naphthalene intermediates from aqueous solution by introducing reed straw into sewage sludge-based activated carbon, Environ. Sci. Pollut. Res., 21 (2014) 2043–2053.
  48. R. Khoshbouy, F. Takahashi, K. Yoshikawa, Preparation of high surface area sludge-based activated hydrochar via hydrothermal carbonization and application in the removal of basic dye, Environ. Res., 175 (2019) 457–467.
  49. P. Barvinschi, O. Stefanescu, T. Dippong, S. Sorescu, M. Stefanescu, CoFe2O4/SiO2 nanocomposites by thermal decomposition of some complex combinations embedded in hybrid silica gels, J. Therm. Anal. Calorim., 112 (2013) 447–453.
  50. L. Zhang, J. Pan, L. Liu, K. Song, Q. Wang, Combined physical and chemical activation of sludge-based adsorbent enhances Cr(VI) removal from wastewater, J. Cleaner Prod., 238 (2020), doi: 10.1016/j.jclepro.2019.117904.
  51. T.L. Silva, A. Ronix, O. Pezoti, L.S. Souza, P.K.T. Leandro, K.C. Bedin, K.K. Beltrame, A.L. Cazetta, V.C. Almeida, Mesoporous activated carbon from industrial laundry sewage sludge: adsorption studies of reactive dye Remazol Brilliant Blue R, Chem. Eng. J., 303 (2016) 467–476.