33. Balsamo M, Di Natale F, Erto A, Lancia A, Montagnaro F, Santoro L (2011) Cadmium
adsorption by coal combustion ashes-based sorbents-relationship between sorbent properties
and adsorption capacity. J Hazard Mater 187(1–3):371–378
34. Nordberg GF (1974) Health hazards of environmental cadmium pollution. Ambio 3(2):55–66
35. Clemens S, Aarts MGM, Thomine S, Verbruggen N (2013) Plant science: the key to
preventing slow cadmium poisoning. Trends Plant Sci 18(2):92–99
36. Pan J, Plant J, Voulvoulis N, Oates C, Ihlenfeld C (2010) Cadmium levels in Europe:
implications for human health. Environ Geochem Health 32(1):1–12
37. Wang Y, Tang X, Chen Y, Zhan L, Li Z, Tang Q (2009) Adsorption behavior and mechanism
of Cd(II) on loess soil from China. J Hazard Mater 172(1):30–37
38. Lam CHK, Ip AWM, Barford JP, McKay G (2010) Use of incineration MSW ash: a review.
Sustainability 2(7):1943–1968
39. Li X, Bertos MF, Hills CD, Carey PJ, Simon S (2007) Accelerated carbonation of municipal
solid waste incineration fly ashes. Waste Manag 27(9):1200–1206
40. Tian H, Gao J, Lu L, Zhao D, Cheng K, Qiu P (2012) Temporal trends and spatial variation
characteristics of hazardous air pollutant emission inventory from municipal solid waste
incineration in China. Environ Sci Technol 46(18):10364–10371
41. Ferreira C, Ribeiro A, Ottosen L (2003) Possible applications for municipal solid waste fly ash.
J Hazard Mater 96(2):201–216
42. UNEP (2010) Final review of scientific information on cadmium-Version of December 2010
43. Wan X, Wang W, Ye T, Guo Y, Gao X (2006) A study on the chemical and mineralogical
characterization of MSWI fly ash using a sequential extraction procedure. J Hazard Mater 134
(1):197–201
44. Xue Y, Hou H, Zhu S, Zha J (2009) Utilization of municipal solid waste incineration ash in
stone mastic asphalt mixture: pavement performance and environmental impact. Constr Build
Mater 23(2):989–996
45. Shi H-S, Kan L-L (2009) Leaching behavior of heavy metals from municipal solid wastes
incineration (MSWI) fly ash used in concrete. J Hazard Mater 164(2):750–754
46. Quina MJ, Bordado JC, Quinta-Ferreira RM (2008) Treatment and use of air pollution control
residues from MSW incineration: an overview. Waste Manag 28(11):2097–2121
47. Cetin S, Pehlivan E (2007) The use of fly ash as a low cost, environmentally friendly
alternative to activated carbon for the removal of heavy metals from aqueous solutions.
Colloids Surf A Physicochem Eng Asp 298(1–2):83–87
48. Shim Y-S, Kim Y-K, Kong S-H, Rhee S-W, Lee W-K (2003) The adsorption characteristics of
heavy metals by various particle sizes of MSWI bottom ash. Waste Manag 23(9):851–857
49. Apak R, Tütem E, Hügül M, Hizal J (1998) Heavy metal cation retention by unconventional
sorbents (red muds and fly ashes). Water Res 32(2):430–440
50. Apiratikul R, Pavasant P (2008) Sorption of Cu
2+ , Cd
2+ , and Pb
2+ using modified zeolite from
coal fly ash. Chem Eng J 144(2):245–258
51. Visa M, Duta A (2013) Methyl-orange and cadmium simultaneous removal using fly ash and
photo-Fenton systems. J Hazard Mater 244:773–779
52. Remenárová L, Pipíška M, Florková E, Horník M, Rozložník M, Augustín J (2014) Zeolites
from coal fly ash as efficient sorbents for cadmium ions. Clean Techn Environ Policy 16
(8):1551–1564
53. Lewinsky AA (2007) Hazardous materials and wastewater: treatment, removal and analysis.
Nova Publishers, New York
54. Jamode A, Sapkal V, Jamode V (2004) Defluoridation of water using inexpensive adsorbents.
J Indian Inst Sci 84(5):163
55. Gupta VK, Ali I, Saleh TA, Nayak A, Agarwal S (2012) Chemical treatment technologies for
waste-water recycling-an overview. RSC Adv 2(16):6380–6388
56. Ali I, Gupta V (2007) Advances in water treatment by adsorption technology. Nat Protoc 1
(6):2661–2667
7 Advances in Cadmium Detoxification/Stabilization by Sintering with Ceramic. . .
319
adsorption by coal combustion ashes-based sorbents-relationship between sorbent properties
and adsorption capacity. J Hazard Mater 187(1–3):371–378
34. Nordberg GF (1974) Health hazards of environmental cadmium pollution. Ambio 3(2):55–66
35. Clemens S, Aarts MGM, Thomine S, Verbruggen N (2013) Plant science: the key to
preventing slow cadmium poisoning. Trends Plant Sci 18(2):92–99
36. Pan J, Plant J, Voulvoulis N, Oates C, Ihlenfeld C (2010) Cadmium levels in Europe:
implications for human health. Environ Geochem Health 32(1):1–12
37. Wang Y, Tang X, Chen Y, Zhan L, Li Z, Tang Q (2009) Adsorption behavior and mechanism
of Cd(II) on loess soil from China. J Hazard Mater 172(1):30–37
38. Lam CHK, Ip AWM, Barford JP, McKay G (2010) Use of incineration MSW ash: a review.
Sustainability 2(7):1943–1968
39. Li X, Bertos MF, Hills CD, Carey PJ, Simon S (2007) Accelerated carbonation of municipal
solid waste incineration fly ashes. Waste Manag 27(9):1200–1206
40. Tian H, Gao J, Lu L, Zhao D, Cheng K, Qiu P (2012) Temporal trends and spatial variation
characteristics of hazardous air pollutant emission inventory from municipal solid waste
incineration in China. Environ Sci Technol 46(18):10364–10371
41. Ferreira C, Ribeiro A, Ottosen L (2003) Possible applications for municipal solid waste fly ash.
J Hazard Mater 96(2):201–216
42. UNEP (2010) Final review of scientific information on cadmium-Version of December 2010
43. Wan X, Wang W, Ye T, Guo Y, Gao X (2006) A study on the chemical and mineralogical
characterization of MSWI fly ash using a sequential extraction procedure. J Hazard Mater 134
(1):197–201
44. Xue Y, Hou H, Zhu S, Zha J (2009) Utilization of municipal solid waste incineration ash in
stone mastic asphalt mixture: pavement performance and environmental impact. Constr Build
Mater 23(2):989–996
45. Shi H-S, Kan L-L (2009) Leaching behavior of heavy metals from municipal solid wastes
incineration (MSWI) fly ash used in concrete. J Hazard Mater 164(2):750–754
46. Quina MJ, Bordado JC, Quinta-Ferreira RM (2008) Treatment and use of air pollution control
residues from MSW incineration: an overview. Waste Manag 28(11):2097–2121
47. Cetin S, Pehlivan E (2007) The use of fly ash as a low cost, environmentally friendly
alternative to activated carbon for the removal of heavy metals from aqueous solutions.
Colloids Surf A Physicochem Eng Asp 298(1–2):83–87
48. Shim Y-S, Kim Y-K, Kong S-H, Rhee S-W, Lee W-K (2003) The adsorption characteristics of
heavy metals by various particle sizes of MSWI bottom ash. Waste Manag 23(9):851–857
49. Apak R, Tütem E, Hügül M, Hizal J (1998) Heavy metal cation retention by unconventional
sorbents (red muds and fly ashes). Water Res 32(2):430–440
50. Apiratikul R, Pavasant P (2008) Sorption of Cu
2+ , Cd
2+ , and Pb
2+ using modified zeolite from
coal fly ash. Chem Eng J 144(2):245–258
51. Visa M, Duta A (2013) Methyl-orange and cadmium simultaneous removal using fly ash and
photo-Fenton systems. J Hazard Mater 244:773–779
52. Remenárová L, Pipíška M, Florková E, Horník M, Rozložník M, Augustín J (2014) Zeolites
from coal fly ash as efficient sorbents for cadmium ions. Clean Techn Environ Policy 16
(8):1551–1564
53. Lewinsky AA (2007) Hazardous materials and wastewater: treatment, removal and analysis.
Nova Publishers, New York
54. Jamode A, Sapkal V, Jamode V (2004) Defluoridation of water using inexpensive adsorbents.
J Indian Inst Sci 84(5):163
55. Gupta VK, Ali I, Saleh TA, Nayak A, Agarwal S (2012) Chemical treatment technologies for
waste-water recycling-an overview. RSC Adv 2(16):6380–6388
56. Ali I, Gupta V (2007) Advances in water treatment by adsorption technology. Nat Protoc 1
(6):2661–2667
7 Advances in Cadmium Detoxification/Stabilization by Sintering with Ceramic. . .
319
