separated by an external magnetic field, which makes them better for recycling and
reduces the secondary pollution to the environment. Besides, graphene-based materials are promising and potential for water purification and also considered as future
materials, but there are still lots of uncertainties to completely understand its
properties and phenomenon. Water quality is quite important for human health.
Therefore, Fe 2 O 3 , Fe 3 O 4 , and other iron oxides coupled with graphene are discussed
and reviewed in this article to summarize the former research achievements in related
fields and also to understand the properties and performance of these composites.
References
1. Speth DR, In’t Zandt MH, Guerrero-Cruz S et al (2016) Genome-based microbial ecology of
anammox granules in a full-scale wastewater treatment system. Nat Commun 7:11172
2. Gago-Ferrero P, Schymanski EL, Bletsou AA et al (2015) Extended suspect and non-target
strategies to characterize emerging polar organic contaminants in raw wastewater with
LC-HRMS/MS. Environ Sci Technol 49(20):12333–12341
3. Ojha DP, Joshi MK, Kim HJ (2017) Photo-Fenton degradation of organic pollutants using a
zinc oxide decorated iron oxide/reduced graphene oxide nanocomposite. Ceram Int 43
(1):1290–1297
4. Hoffmann MR, Martin ST, Choi W et al (1995) Environmental applications of semiconductor
photocatalysis. Chem Rev 95(1):69–96
5. Legrini O, Oliveros E, Braun AM (1993) Photochemical processes for water treatment. Chem
Rev 93(2):671–698
6. Wu K, Xie Y, Zhao J et al (1999) Photo-Fenton degradation of a dye under visible light
irradiation. J Mol Catal A-Chem 144(1):77–84
7. Neyens E, Baeyens J (2003) A review of classic Fenton’s peroxidation as an advanced oxidation
technique. J Hazard Mater 98(1):33–50
8. Tian S, Tu Y, Chen D et al (2011) Degradation of Acid Orange II at neutral pH using Fe2
(MoO4)3 as a heterogeneous Fenton-like catalyst. Chem Eng J 169(1):31–37
9. Feng J, Hu X, Yue P (2004) Discoloration and mineralization of Orange II using different
heterogeneous catalysts containing Fe: a comparative study. Environ Sci Technol 38
(21):5773–5778
10. Arnold SM, Hickey WJ, Harris RF (1995) Degradation of atrazine by Fenton's reagent:
condition optimization and product quantification. Environ Sci Technol 29(8):2083–2089
11. Herney-Ramirez J, Vicente MA, Madeira LM (2010) Heterogeneous photo-Fenton oxidation
with pillared clay-based catalysts for wastewater treatment: a review. Appl Catal B-Environ 98
(1):10–26
12. Pouran SR, Aziz ARA, Daud WMAW (2015) Review on the main advances in photo-Fenton
oxidation system for recalcitrant wastewaters. J Ind Eng Chem 21:53–69
13. Babuponnusami A, Muthukumar K (2014) A review on Fenton and improvements to the Fenton
process for wastewater treatment. J Environ Chem Eng 2(1):557–572
14. Dhakshinamoorthy A, Navalon S, Alvaro M et al (2012) Metal nanoparticles as heterogeneous
Fenton catalysts. ChemSusChem 5(1):46–64
15. Li D, Yuranova T, Albers P et al (2004) Accelerated photobleaching of Orange II on novel
(H5FeW12O40•10H2O)/silica structured fabrics. Water Res 38(16):3541–3550
16. Sabhi S, Kiwi J (2001) Degradation of 2, 4-dichlorophenol by immobilized iron catalysts. Water
Res 35(8):1994–2002
17. Hu X, Liu B, Deng Y et al (2011) Adsorption and heterogeneous Fenton degradation of
17α-methyltestosterone on nano Fe3O4/MWCNTs in aqueous solution. Appl Catal
B-Environ 107(3):274–283
References
255
reduces the secondary pollution to the environment. Besides, graphene-based materials are promising and potential for water purification and also considered as future
materials, but there are still lots of uncertainties to completely understand its
properties and phenomenon. Water quality is quite important for human health.
Therefore, Fe 2 O 3 , Fe 3 O 4 , and other iron oxides coupled with graphene are discussed
and reviewed in this article to summarize the former research achievements in related
fields and also to understand the properties and performance of these composites.
References
1. Speth DR, In’t Zandt MH, Guerrero-Cruz S et al (2016) Genome-based microbial ecology of
anammox granules in a full-scale wastewater treatment system. Nat Commun 7:11172
2. Gago-Ferrero P, Schymanski EL, Bletsou AA et al (2015) Extended suspect and non-target
strategies to characterize emerging polar organic contaminants in raw wastewater with
LC-HRMS/MS. Environ Sci Technol 49(20):12333–12341
3. Ojha DP, Joshi MK, Kim HJ (2017) Photo-Fenton degradation of organic pollutants using a
zinc oxide decorated iron oxide/reduced graphene oxide nanocomposite. Ceram Int 43
(1):1290–1297
4. Hoffmann MR, Martin ST, Choi W et al (1995) Environmental applications of semiconductor
photocatalysis. Chem Rev 95(1):69–96
5. Legrini O, Oliveros E, Braun AM (1993) Photochemical processes for water treatment. Chem
Rev 93(2):671–698
6. Wu K, Xie Y, Zhao J et al (1999) Photo-Fenton degradation of a dye under visible light
irradiation. J Mol Catal A-Chem 144(1):77–84
7. Neyens E, Baeyens J (2003) A review of classic Fenton’s peroxidation as an advanced oxidation
technique. J Hazard Mater 98(1):33–50
8. Tian S, Tu Y, Chen D et al (2011) Degradation of Acid Orange II at neutral pH using Fe2
(MoO4)3 as a heterogeneous Fenton-like catalyst. Chem Eng J 169(1):31–37
9. Feng J, Hu X, Yue P (2004) Discoloration and mineralization of Orange II using different
heterogeneous catalysts containing Fe: a comparative study. Environ Sci Technol 38
(21):5773–5778
10. Arnold SM, Hickey WJ, Harris RF (1995) Degradation of atrazine by Fenton's reagent:
condition optimization and product quantification. Environ Sci Technol 29(8):2083–2089
11. Herney-Ramirez J, Vicente MA, Madeira LM (2010) Heterogeneous photo-Fenton oxidation
with pillared clay-based catalysts for wastewater treatment: a review. Appl Catal B-Environ 98
(1):10–26
12. Pouran SR, Aziz ARA, Daud WMAW (2015) Review on the main advances in photo-Fenton
oxidation system for recalcitrant wastewaters. J Ind Eng Chem 21:53–69
13. Babuponnusami A, Muthukumar K (2014) A review on Fenton and improvements to the Fenton
process for wastewater treatment. J Environ Chem Eng 2(1):557–572
14. Dhakshinamoorthy A, Navalon S, Alvaro M et al (2012) Metal nanoparticles as heterogeneous
Fenton catalysts. ChemSusChem 5(1):46–64
15. Li D, Yuranova T, Albers P et al (2004) Accelerated photobleaching of Orange II on novel
(H5FeW12O40•10H2O)/silica structured fabrics. Water Res 38(16):3541–3550
16. Sabhi S, Kiwi J (2001) Degradation of 2, 4-dichlorophenol by immobilized iron catalysts. Water
Res 35(8):1994–2002
17. Hu X, Liu B, Deng Y et al (2011) Adsorption and heterogeneous Fenton degradation of
17α-methyltestosterone on nano Fe3O4/MWCNTs in aqueous solution. Appl Catal
B-Environ 107(3):274–283
References
255
