References

  1. Y.L. Li, L.P. Li, J. Yin, W.J. Liang, J. Li, Optimization and preparation of sludge-based activated carbon by two-step pyrolysis and performance characterization, J. Beijing Univ. Technol., 39 (2013) 1887–1890.
  2. A.M. Abioye, F.N. Ani, Recent development in the production of activated carbon electrodes from agricultural waste biomass for super capacitors: a review, Renew. Sust. Energy Rev., 52 (2015) 1282–1293.
  3. H.B. Feng, H. Hu, H.W. Dong, Y. Xiao, Y.J. Cai, B.F. Lei, Y.L. Liu, M.T. Zheng, Hierarchical structured carbon derived from bagasse wastes: a simple and efficient synthesis route and its improved electrochemical properties for high-performance super capacitors, J. Power Sources, 302 (2016) 164–173.
  4. Y. Liu, Q. Chen, Z.R. Niu, X.X. Wang, X.H. Lei, K.Y. Yang, Preparation of peanut hull sludge-based activated carbon and application for oily wastewater treatment, Environ. Pollut. Control, 38 (2016) 43–47.
  5. S. Rio, L. Le Coq, C. Faur, P. Le Cloirec, Production of porous carbonaceous adsorbent from physical activation of sewage sludge: application to wastewater treatment, Water Sci. Technol., 53 (2006) 237–244.
  6. K.B. Fitzmorris, I.M. Lima, W.E. Marshall, R.S. Reimers, Anion and cat ion leaching or desorption from activated carbons from municipal sludge and poultry manure as affected by pH, Water Environ. Res., 78 (2006) 2324–2329.
  7. A. Ros, M.A. Lillo-Ródenas, E. Fuente, M.A. Montes-Morán, M.J. Martín, A. Linares-Solano, High surface area materials prepared from sewage sludge-based precursors, Chemosphere, 65 (2006) 132–140.
  8. J. Alvarez, G. Lopez, M. Amutio, M. Olazar, Preparation of adsorbents from sewage sludge pyrolytic char by carbon dioxide activation, Process Saf. Environ., 103 (2016) 76–86.
  9. K.M. Smith, G.D. Fowler, S. Pullket, N.J.D. Graham, Sewage sludge-based adsorbents: a review of their production, properties and use in water treatment applications, Water Res., 43 (2009) 2569–2594.
  10. N.R. Khalili, M. Campbell, G. Sandi, J. Golas, Production of micro-and mesoporous activated carbon from paper mill sludge: I. Effect of zinc chloride activation, Carbon, 38 (2000) 1905–1915.
  11. X.G. Chen, S. Jeyaseelan, N. Graham, Physical and chemical properties study of the activated carbon made from sewage sludge, Waste Manage., 22 (2002) 755–760.
  12. G. Sandı́, N.R. Khalili, W. Lu, J. Prakash, Electrochemical performance of carbon materials derived from paper mill sludge, J. Power Sources, 119 (2003) 34–38.
  13. L.L. Yu, Q. Zhong, Preparation of adsorbents made from sewage sludges for adsorption of organic materials from wastewater, J. Hazard. Mater., 137 (2006) 359–366.
  14. Y. He, X.F. Liao, L. Liao, W. Shu, Low-cost adsorbent prepared from sewage sludge and corn stalk for the removal of COD in leachate, Environ. Sci. Pollut. Res., 21 (2014) 8157–8166.
  15. A. Bagreev, T.J. Bandosz, H2S adsorption/oxidation on materials obtained using sulphuric acid activation of sewage sludgederived fertilizer, J. Colloid Interface Sci., 252 (2002) 188–194.
  16. M. Martin, A. Artola, M. Balaguer, M. Rigola, Towards waste minimization in WWTP: activated carbon from biological sludge and its application in liquid phase adsorption, J. Chem. Technol. Biotechnol., 77 (2002) 825–833.
  17. M. Martin, A. Artola, M. Balaguer, M. Rigola, Activated carbons developed from surplus sewage sludge for the removal of dyes from dilute aqueous solutions, Chem. Eng. J., 94 (2003) 231–239.
  18. F.S. Zhang, J.O. Nriagu, H. Itoh, Mercury removal from water using activated carbons derived from organic sewage sludge, Water Res., 39 (2005) 389–395.
  19. V.M. Monsalvo, A.F. Mohedano, J.J. Rodriguez, Activated carbons from sewage sludge: Application to aqueous-phase adsorption of 4-chlorophenol, Desalination, 277 (2011) 377–382.
  20. M. Hunsom, C. Autthanit, Adsorptive purification of crude glycerol by sewage sludge-derived activated carbon prepared by chemical activation with H3PO4, K2CO3 and KOH, Chem. Eng. J., 229 (2013) 334–343.
  21. Q.H. Lin, H. Cheng, G.Y. Chen, Preparation and characterization of carbonaceous adsorbents from sewage sludge using a pilotscale microwave heating equipment, J. Anal. Appl. Pyrol., 93 (2012) 113–119.
  22. A. Ahmadpour, D.D. Do, The preparation of activated carbon from macadamia nutshell by chemical activation, Carbon, 35 (1997) 1723–1732.
  23. M.A. Lillo-Ródenas, D. Cazorla-Amoro´s, A. Linares-Solano, Understanding chemical reactions between carbons and NaOH and KOH: an insight into the chemical activation mechanism, Carbon, 41 (2003) 267–275.
  24. H.Y. Kang, S.S. Park, Y.S. Rim, Preparation of activated carbon from paper mill sludge by KOH-activation, Korean J. Chem. Eng., 23 (2006) 948–953.
  25. J. Wang, S. Kaskel, KOH activation of carbon-based materials for energy storage, J. Mater. Chem., 22 (2012) 23710–23725.
  26. J. Zhang, J.M. Gao, Y. Chen, X.J. Jin, Preparation and characterization of the carbon purified from the walnut shells activated chemically with KOH, Results Phys., 7 (2017) 1628–1633.
  27. X.L. Lu, Preparation of Absorbent Using Sewage Sludge and Its Application on Wastewater Treatment, Wuhan University of Science and Technology, 2015.
  28. X.M. Wang, N.W. Zhu, B.K. Yin, Preparation of sludgebased activated carbon and its application in dye wastewater treatment, J. Hazard. Mater., 153 (2008) 22–27.
  29. D.C. Huang, H.S. Wang, Y.J. Zou, S. Xu, Y.J. Lai, J.Q. Yang, Adsorption of phosphorus from aqueous solution on activated stalk-carbon prepared under condition of atmosphere, Chin. J. Environ. Eng., 3 (2015) 1183–1188.
  30. R.H. Shao, P. Fang, Y.R. Lin, On the treatment of the phosphorus wastewater by using the sewage sludge-based activated carbon, J. Saf. Environ., 16 (2016) 267–273.
  31. P. Lodeiro, J.L. Barriada, R. Herrero, M.E. Sastre, The marine macroalga Cystoseira baccata as biosorbent for cadmium (II) and lead (II) removal: kinetic and equilibrium studies, Environ. Pollut., 142 (2006) 264–273.
  32. H.Y. Chen, Y.J. Yang, Z.J. Zhang, X.D. Tan, X. Xin, F.M. Liu, Effects of the preparation conditions of municipal sewage sludge bentonite absorbent on adsorption of Pb2+, Chem. Res. Appl., 22 (2010) 800–804.
  33. Y.L. Chen, B.T. Li, Study on the advanced treatment of landfill leachate by activated carbon made from sewage sludge and straw, Environ. Pollut. Control, 2 (2014) 67–70,75.
  34. Y. He, W. Shu, X.F. Liao, T.Y. You, L. Liao, Preparation of sludge-stalk based activated carbon and its adsorption of COD in leachate, Chin. J. Environ. Eng., 9 (2015) 1663–1669.
  35. Y.B. Zhai, H.M. Chen, B.B. Xu, B.B. Xiang, C. Zhong, C.T. Li, G.M. Zeng, Influence of sewage sludge-based activated carbon and temperature on the liquefaction of sewage sludge: yield and composition of bio-oil, immobilization and risk assessment of heavy metals, Bioresour. Technol., 159 (2014) 72–79.
  36. J. Ábrego, J. Arauzo, J.L. Sánchez, A. Gonzalo, T. Cordero, J.R. Mirasol, Structural changes of sewage sludge char during fixedbed pyrolysis, Ind. Eng. Chem. Res., 48 (2009) 3211–3221.
  37. H.M. Chen, Y.B. Zhai, B.B. Xu, B.B. Xiang, L. Zhu, L. Qiu, X.T. Liu, C.T. Li, G.M. Zeng, Characterization of bio-oil and biochar from high-temperature pyrolysis of sewage sludge, Environ. Technol., 36 (2014) 470–478.
  38. 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.
  39. A. Bagreev, J.A. Menendez, I. Dukhno, Y. Tarasenko, T.J. Bandosz, Bituminous coal-based activated carbons modified with nitrogen as adsorbents of hydrogen sulfide, Carbon, 42 (2004) 469–476.
  40. T.J. Bandosz, On the adsorption/oxidation of hydrogen sulfide on activated carbons at ambient temperatures, J. Colloid Interface Sci., 246 (2002) 1–20.
  41. T.J. Bandosz, K. Block, Municipal sludge-industrial sludge composite desulfurization adsorbents: synergy enhancing the catalytic properties, Environ. Sci. Technol., 40 (2006) 3378–3383.
  42. T.J. Bandosz, M. Seredych, Tobacco waste/industrial sludge based desulfurization adsorbents: effect of phase interactions during pyrolysis on surface activity, Environ. Sci. Technol., 41 (2007) 3715–3721.
  43. S. Bashkova, F.S. Baker, X.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.
  44. R. Yan, T. Chin, Y.L. Ng, H.Q. Duan, D.T. Liang, J.H. Tay, Influence of surface properties on the mechanism of H2S removal by alkaline activated carbons, Environ. Sci. Technol., 38 (2004) 316–323.
  45. 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.
  46. Q.J. Chen, J.T. Wang, X.J. Liu, X. Zhao, W.M. Qiao, D.H. Long, Alkaline carbon nanotubes as effective catalysts for H2S oxidation, Carbon, 49 (2011) 3773–3780.
  47. F. Zeng, X.F. Liao, Y. Li, Y. He, L. Liao, H. Hui, Preparation of sludge-straw based activated carbon and its adsorption of H2S, J. Environ. Sci., 37 (2017) 4269–4276.
  48. C. He, A. Giannis, J.Y. Wang, Conversion of sewage sludge to clean solid fuel using hydrothermal carbonization: hydrochar fuel characteristics and combustion behavior, Appl. Energy, 111 (2013) 257–266.
  49. C. Peng, Y.B. Zhai, Y. Zhu, B.B. Xu, T.F. Wang, C.T. Li, G.M. Zeng, Production of char from sewage sludge employing hydrothermal carbonization: char properties, combustion behavior and thermal characteristics, Fuel, 176 (2016) 110–118.
  50. Y.M. Hu, J.C. Jiang, Y.J. Sun, Z.Z. Yang, The thermal effect research during the cellulose pyrolysis process, Renew. Energy Res., 31 (2013) 101–105.
  51. A. Gani, I. Naruse, Effect of cellulose and lignin content on pyrolysis and combustion characteristic for several types, Renew. Energy, 32 (2007) 649–661.
  52. D.Z. Lu, H. Yao, Q.B. Wang, Z.Y. Li, Q.C. Peng, X.W. Liu, M.H. Xu, Effect of cellulose and lignin content on pyrolysis and gasification characteristic for several types of biomass, J. Eng. Thermophys., 29 (2008) 1771–1774.
  53. K.S. Sing, Reporting physisorption data for gas/solid systems with special reference to the determination of surface area and porosity (Recommendations 1984), Pure Appl. Chem., 57 (1985) 603–619.
  54. Z.D. Xie, Study on Preparation and Application of Activated Carbon from Ramie Stalk, Donghua University, Shang Hai, 2012.
  55. L. Gu, P. Zhou, H.P. Yuan, N.W. Zhu, Mechanism and performance of preparation of compositional straw-sludge based activated carbon with different chemical activators, Water Purif. Technol., 32 (2013) 61–66.
  56. Y.B. Xie, W.Y. Zhang, R. Zhang, G. Chen, C.X. Zhang, L.C. Ling, Comparisons of chemical properties and pore structure of carbons activated by KOH and NaOH, Carbon Tech., 2 (2008) 18–23.
  57. R. Azargohar, A.K. Dalai, The direct oxidation of hydrogen sulphide over activated carbons prepared from lignite coal and biochar, Can. J. Chem. Eng., 89 (2011) 844–853.
  58. P. Wang, J.S. Feng, Organic Spectroscopy, National Defend Industry Press, Beijing. 2012.
  59. 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.
  60. M. Angeles Lillo-Ródenas, A. Ros, E. Fuente, M.A. Montes- Morán, M.J. Martin, A. Linares-Solano, Further insights into the activation process of sewage sludge-based precursors by alkaline hydroxides, Chem. Eng. J., 142 (2008) 168–174.
  61. C. Tang, J. Zhua, Z. Lid, R. Zhua, Q. Zhoua, J. Weia, H. Hea, Q. Tao, Surface chemistry and reactivity of SiO2 polymorphs: a comparative study on a-quartz and a-cristobalite, Appl. Surf. Sci., 355 (2015) 1161–1167.
  62. M. Angeles Lillo-Ródenas, J. Juan-Juan, D. Cazorla-Amoros, A. Linares-Solano, About reactions occurring during chemical activation with hydroxides, Carbon, 42 (2004) 1371–1375.
  63. T. Yang, A.C. Lua, Characteristics of activated carbons prepared from pistachionut shells by potassium hydroxide activation, Microporous Mesoporous Mater., 63 (2003) 113–124.
  64. Y.K. Choi, M.H. Cho, J.S. Kim, Air gasification of dried sewage sludge in a two-stage gasifier. Part 4: Application of additives including Ni-impregnated activated carbon for the production of a tar-free and H2-rich producer gas with a low NH3 content, Int. J. Hydrogen Energy., 41 (2016) 1460–1467.