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Research Article | Open Access

Semiconductor based photocatalysts for detoxification of emerging pharmaceutical pollutants from aquatic systems: A critical review

Prasenjit KaraKomal ShuklaaPratyush JainaGovindasamy SathiyanaRaju Kumar Guptaa,b( )
Department of Chemical Engineering, Indian Institute of Technology Kanpur, Kanpur, 208016, Uttar Pradesh, India
Center for Environmental Science and Engineering, Indian Institute of Technology Kanpur, Kanpur, 208016, Uttar Pradesh, India
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Abstract

The presence of emerging pharmaceutical pollutants at low concentration levels in the surface and ground water has caused a potential threat to the marine and human lives. The emerging pharmaceutical pollutants generally include analgesics and anti-inflammatories, lipid-lowering drugs, antiepileptics, antibiotics, and β-blockers compounds. In recent years, various processes have been developed and advanced oxidation process is the most effective for decontamination of emerging pharmaceutical pollutants till date. Semiconductor based photocatalysis technology has recently received a great interest for the removal of new emerging pharmaceutical pollutants. This review article highlights the removal of emerging pharmaceutical pollutants especially through photocatalysis as well as recent progress using different nanostructures. Additional focus has been given over fundamental key dynamics processes of nanomaterials and degradation pathways of emerging pharmaceutical pollutants. Finally, this review concludes with the perspectives and outlook over future developments in photocatalysis technology for the degradation of emerging pharmaceutical pollutants leading to a solution for real-world in near future.

References

[1]

M.B. Ahmed, J.L. Zhou, H.H. Ngo, W. Guo, N.S. Thomaidis, J. Xu, J. Hazard, Materials 323 (2017) 274–298.

[2]

Y. Li, G. Zhu, W.J. Ng, S.K. Tan Sci, Total Environ. 468-469 (2014) 908–932.

[3]

N. Bolong, A.F. Ismail, M.R. Salim, T. Matsuura, Desalination 239 (2009) 229–246.

[4]
Gavrilescu M. Demnerová K. Aamand J. Agathos S. Fava F. N. Biotech.201532147156

M. Gavrilescu, K. Demnerová, J. Aamand, S. Agathos, F. Fava, N. Biotech. 32 (2015) 147–156.

10.1016/j.nbt.2014.01.001
[5]

D.W. Kolpin, E.T. Furlong, M.T. Meyer, E.M. Thurman, S.D. Zaugg, L.B. Barber, H.T. Buxton, Environ. Sci. Technol. 36 (2002) 1202–1211.

[6]

B. Tiwari, B. Sellamuthu, Y. Ouarda, P. Drogui, R.D. Tyagi, G. Buelna, Bioresour. Technol. 224 (2017) 1–12.

[7]

B. Petrie, R. Barden, B. Kasprzyk-Hordern, Water Res. 72 (2015) 3–27.

[8]
Deblonde T. Cossu-Leguille C. Hartemann Int P. J. Hyg. Envir. Heal.2011214442448

T. Deblonde, C. Cossu-Leguille, P. Hartemann Int, J. Hyg. Envir. Heal. 214 (2011) 442–448.

10.1016/j.ijheh.2011.08.002
[9]

P.H. Roberts, K.V. Thomas, Sci. Total Environ. 356 (2006) 143–153.

[10]

M. Cleuvers, Ecotoxicol. Environ. Saf. 59 (2004) 309–315.

[11]

H.R. Buser, T. Poiger, M.D. Muller, Environ. Sci. Technol. 33 (1999) 2529–2535.

[12]

U. Kunkel, M. Radke, Water Res. 46 (2012) 5551–5565.

[13]

J. Rivera-Utrilla, M. Sánchez-Polo, M.Á. Ferro-García, G. Prados-Joya, R. Ocampo-Pérez, Chemosphere 93 (2013) 1268–1287.

[14]
Poynton H.C. Vulpe C.D. J. Am. Water Resour. Assoc.200945839610.1111/j.1752-1688.2008.00291.x

H.C. Poynton, C.D. Vulpe, J. Am. Water Resour. Assoc. 45 (2009) 83–96.

[15]

J. Pro, J.A. Ortiz, S. Boleas, C. Fernández, G. Carbonell, J.V. Tarazona, Bull. Environ. Contam. Toxicol. 70 (2003) 290–295.

[16]

B. Quinn, F. Gagné, C. Blaise, Sci. Total Environ. 389 (2008) 306–314.

[17]
Gracia-Lor E. Sancho J.V. Hernández F. J. Chromatogr. A2011121822642275

E. Gracia-Lor, J.V. Sancho, F. Hernández, J. Chromatogr. A 1218 (2011) 2264–2275.

10.1016/j.chroma.2011.02.026
[18]

S.R. Hughes, P. Kay, L.E. Brown, Environ. Sci. Technol. 47 (2013) 661–677.

[19]

N.S. Thomaidis, A.G. Asimakopoulos, A.A. Bletsou, Global Nest J. 14 (2012) 72–79.

[20]

M. Isidori, M. Lavorgna, A. Nardelli, L. Pascarella, A. Parrella, Sci. Total Environ. 346 (2005) 87–98.

[21]

R. Mailler, J. Gasperi, Y. Coquet, A. Buleté, E. Vulliet, S. Deshayes, S. Zedek, C. MirandeBret, V. Eudes, A. Bressy, E. Caupos, R. Moilleron, G. Chebbo, V. Rocher, Sci. Total Environ. 542 (2016) 983–996.

[22]
Chang H.S. Choo K.H. Lee B. Choi S.J. J. Hazard Mater.200917211210.1097/SHK.0b013e3181c3cea5

H.S. Chang, K.H. Choo, B. Lee, S.J. Choi, J. Hazard Mater. 172 (2009) 1–12.

[23]

S.D. Kim, J. Cho, I.S. Kim, B.J. Vanderford, S.A. Snyder, Water Res. 41 (2007) 1013–1021.

[24]

Z. Yu, S. Peldszus, P.M. Huck, Water Res. 42 (2008) 2873–2882.

[25]
Y. Patiño, E. Díaz, S. Ordóñez Chemosphere, 119, 2015, S124-S130.
[26]

A. Katsigiannis, C. Noutsopoulos, J. Mantziaras, M. Gioldasi, Chem. Eng. J. 280 (2015) 49–57.

[27]

A. Rossner, S.A. Snyder, D.R.U. Knappe, Water Res. 43 (2009) 3787–3796.

[28]

A.C. Sophia, E.C. Lima, Ecotoxicol. Environ. Saf. 150 (2018) 1–17.

[29]
Thiebault T. Guégan R. Boussafir M. J. Colloid Interface Sci.201545318

T. Thiebault, R. Guégan, M. Boussafir, J. Colloid Interface Sci. 453 (2015) 1–8.

10.1016/j.jcis.2015.04.029
[30]

A.A. Babaei, E.C. Lima, A. Takdastan, N. Alavi, G. Goudarzi, M. Vosoughi, G. Hassani, M. Shirmardi, Water Sci. Technol. 74 (2016) 1202–1216.

[31]
Fischer A. ter Laak T. Bronders J. Desmet N. Christoffels E. van Wezel A. van der Hoek J.P. J. Environ. Manag.2017193360372

A. Fischer, T. ter Laak, J. Bronders, N. Desmet, E. Christoffels, A. van Wezel, J.P. van der Hoek, J. Environ. Manag. 193 (2017) 360–372.

10.1016/j.jenvman.2017.02.002
[32]

R. Andreozzi, V. Caprio, A. Insola, R. Marotta, Catal. Today 53 (1999) 51–59.

[33]

C. Lee, J. Yoon, U. Von Gunten, Water Res. 41 (2007) 581–590.

[34]

M. Pera-Titus, V. Garcı́a-Molina, M.A. Baños, J. Giménez, S. Esplugas, Appl. Catal. B Environ. 47 (2004) 219–256.

[35]
Kar P. Sardar S. Ghosh S. Parida M.R. Liu B. Mohammed O.F. Lemmens P. Pal S.K. J. Mater. Chem. C2015382008211

P. Kar, S. Sardar, S. Ghosh, M.R. Parida, B. Liu, O.F. Mohammed, P. Lemmens, S.K. Pal, J. Mater. Chem. C 3 (2015) 8200–8211.

10.1039/C5TC01475A
[36]

A. Serrà, E. Gómez, L. Philippe, Catalysts 9 (2019) 974.

[37]

J. Low, J. Yu, M. Jaroniec, S. Wageh, A.A. Al-Ghamdi, Adv. Mater. 29 (2017) 1601694.

[38]

P. Kar, P. Jain, V. Kumar, R.K. Gupta J, Environ. Chem. Eng. 7 (2019) 102843.

[39]

M.A. Fox, M.T. Dulay, Chem. Rev. 93 (1993) 341–357.

[40]

P. Kar, T.K. Maji, R. Nandi, P. Lemmens, S.K. Pal, Nano-Micro Lett. 9 (2016) 18.

[41]

J. Prakash, S. Sun, H.C. Swart, R.K. Gupta, Appl. Mater. Today 11 (2018) 82–135.

[42]

A.B. Djurišić, Y. He, A.M.C. Ng, Apl. Mater. 8 (2020) 30903.

[43]

J. Schneider, M. Matsuoka, M. Takeuchi, J. Zhang, Y. Horiuchi, M. Anpo, D.W. Bahnemann, Chem. Rev. 114 (2014) 9919–9986.

[44]

K. Baba, S. Bulou, M. Quesada-Gonzalez, S. Bonot, D. Collard, N.D. Boscher, P. Choquet, ACS Appl. Mater. Interfaces 9 (2017) 41200–41209.

[45]

M.T. Uddin, Y. Nicolas, C. Olivier, T. Toupance, L. Servant, M.M. Müller, H.-J. Kleebe, J. Ziegler, W. Jaegermann, Inorg. Chem. 51 (2012) 7764–7773.

[46]

J. Wen, J. Xie, X. Chen, X. Li, Appl. Surf. Sci. 391 (2017) 72–123.

[47]

L. Zhao, M. Xia, Y. Liu, B. Zheng, Q. Jiang, J. Lian, Mater. Trans. 53 (2012) 463–468.

[48]
Teoh W.Y. Scott J.A. Amal R. J. Phys. Chem. Lett.2012362963910.1021/jz3000646

W.Y. Teoh, J.A. Scott, R. Amal, J. Phys. Chem. Lett. 3 (2012) 629–639.

[49]

R. Daghrir, P. Drogui, D. Robert, Ind. Eng. Chem. Res. 52 (2013) 3581–3599.

[50]

P. Xu, G.M. Zeng, D.L. Huang, C.L. Feng, S. Hu, M.H. Zhao, C. Lai, Z. Wei, C. Huang, G.X. Xie, Z.F. Liu, Sci. Total Environ. 424 (2012) 1–10.

[51]

C. Sanchez, H. Arribart, M.M. Giraud Guille, Nat. Mater. 4 (2005) 277–288.

[52]
Singh N. Chakraborty R. Gupta R.K. J. Environ. Chem. Eng.20186459467

N. Singh, R. Chakraborty, R.K. Gupta, J. Environ. Chem. Eng. 6 (2018) 459–467.

10.1016/j.jece.2017.12.027
[53]
Kar P. Maji T.K. Sarkar P.K. Lemmens P. Pal S.K. J. Mater. Chem. A2018636743683

P. Kar, T.K. Maji, P.K. Sarkar, P. Lemmens, S.K. Pal, J. Mater. Chem. A 6 (2018) 3674–3683.

10.1039/C7TA11138J
[54]

P. Kar, T.K. Maji, J. Patwari, S.K. Pal Mater, Chem. Phys. 200 (2017) 70–77.

[55]

R. Shetty, V.B. Chavan, P.S. Kulkarni, B.D. Kulkarni, S.P. Kamble, Indian Chem. Eng. 59 (2017) 177–199.

[56]

A. Bernabeu, R.F. Vercher, L. Santos-Juanes, P.J. Simón, C. Lardín, M.A. Martínez, J.A. Vicente, R. González, C. Llosá, A. Arques, A.M. Amat, Catal. Today 161 (2011) 235–240.

[57]
Mehrabadi Z. Faghihian H. J. Photochem. Photobiol. A2018356102111

Z. Mehrabadi, H. Faghihian, J. Photochem. Photobiol. A 356 (2018) 102–111.

10.1016/j.jphotochem.2017.12.042
[58]

L. Rimoldi, D. Meroni, E. Falletta, V. Pifferi, L. Falciola, G. Cappelletti, S. Ardizzone, Photochem. Photobiol. Sci. 16 (2017) 60–66.

[59]

N. Miranda-García, M.I. Maldonado, J.M. Coronado, S. Malato, Catal. Today 151 (2010) 107–113.

[60]

M. Karaca, M. Kirans¸an, S. Karaca, A. Khataee, A. Karimi, Ultrason. Sonochem. 31 (2016) 250–256.

[61]

X.-J. Wen, C.-G. Niu, L. Zhang, G.-M. Zeng, ACS Sustain. Chem. Eng. 5 (2017) 5134–5147.

[62]

R. Rosal, A. Rodríguez, J.A. Perdigón-Melón, A. Petre, E. García-Calvo, M.J. Gómez, A. Agüera, A.R. Fernández-Alba, Water Res. 44 (2010) 578–588.

[63]
Hilton M.J. Thomas K.V. J. Chromatogr. A20031015129141

M.J. Hilton, K.V. Thomas, J. Chromatogr. A 1015 (2003) 129–141.

10.1016/S0021-9673(03)01213-5
[64]

T.A. Ternes, A. Joss, H. Siegrist, Environ. Sci. Technol. 38 (2004) 392A–399A.

[65]

R. Rodil, J.B. Quintana, E. Concha-Graña, P. López-Mahía, S. Muniategui-Lorenzo, D. Prada-Rodríguez, Chemosphere 86 (2012) 1040–1049.

[66]

S. Mohapatra, C.-H. Huang, S. Mukherji, L.P. Padhye, Chemosphere 159 (2016) 526–535.

[67]

V. Geissen, H. Mol, E. Klumpp, G. Umlauf, M. Nadal, M. van der Ploeg, S.E.A.T.M. van de Zee, C.J. Ritsema, International Soil and Water conservation Research 3 (2015) 57–65.

[68]

R. Hirsch, T. Ternes, K. Haberer, K.L. Kratz, Sci. Total Environ. 225 (1999) 109–118.

[69]

B.J. Richardson, P.K.S. Lam, M. Martin, Mar. Pollut. Bull. 50 (2005) 913–920.

[70]

M.l. Farré, S. Pérez, L. Kantiani, D. Barceló, Trends Anal. Chem. 27 (2008) 991 –1007.

[71]

M. Stuart, D. Lapworth, E. Crane, A. Hart, Sci. Total Environ. 416 (2012) 1–21.

[72]

B. Quinn, F. Gagné, C. Blaise, Sci. Total Environ. 389 (2008) 306–314.

[73]

S.D. Costanzo, J. Murby, J. Bates, Mar. Pollut. Bull. 51 (2005) 218–223.

[74]

Q. Sui, X. Cao, S. Lu, W. Zhao, Z. Qiu, G. Yu, Emerging Contaminants 1 (2015) 14–24.

[75]

S. Castiglioni, R. Bagnati, R. Fanelli, F. Pomati, D. Calamari, E. Zuccato, Environ. Sci. Technol. 40 (2006) 357–363.

[76]
Kim I. Yamashita N. Tanaka H. J. Hazard Mater.200916611341140

I. Kim, N. Yamashita, H. Tanaka, J. Hazard Mater. 166 (2009) 1134–1140.

10.1016/j.jhazmat.2008.12.020
[77]

C. Belver, M. Hinojosa, J. Bedia, M. Tobajas, M. Alvarez, V. Rodríguez-González, J. Rodriguez, Materials 10 (2017) 960.

[78]
Expósito A.J. Patterson D.A. Mansor W.S.W. Monteagudo J.M. Emanuelsson E. Sanmartín I. Durán A. J. Environ. Manag.2017187504512

A.J. Expósito, D.A. Patterson, W.S.W. Mansor, J.M. Monteagudo, E. Emanuelsson, I. Sanmartín, A. Durán, J. Environ. Manag. 187 (2017) 504–512.

10.1016/j.jenvman.2016.11.012
[79]
Belver C. Bedia J. Rodriguez J.J. J. Hazard Mater.2017322233242

C. Belver, J. Bedia, J.J. Rodriguez, J. Hazard Mater. 322 (2017) 233–242.

10.1016/j.jhazmat.2016.02.028
[80]

M. Tobajas, C. Belver, J.J. Rodriguez, Chem. Eng. J. 309 (2017) 596–606.

[81]

H. Gong, W. Chu, M. Chen, Q. Wang, Water Res. 112 (2017) 167–175.

[82]

H. Gong, W. Chu, M. Chen, Q. Wang, Water Res. 112 (2017) 167–175.

[83]

A. Schilling, R. Corey, M. Leonard, B. Eghtesad, Cleve. Clin. J. Med. 77 (2010) 19–27.

[84]

C. Tan, N. Gao, S. Zhou, Y. Xiao, Z. Zhuang, Chem. Eng. J. 253 (2014) 229–236.

[85]

O. Cardoso, J.-M. Porcher, W. Sanchez, Chemosphere 115 (2014) 20–30.

[86]
Huguet M. Simon V. Gallard H. J. Hazard Mater.2014271245251

M. Huguet, V. Simon, H. Gallard, J. Hazard Mater. 271 (2014) 245–251.

10.1016/j.jhazmat.2014.02.017
[87]

J.C.-T. Lin, M.D.G. de Luna, G.L. Aranzamendez, M.-C. Lu Chemosphere, 155 (2016), 388-394

[88]

C.-T. Chang, J.-J. Wang, T. Ouyang, Q. Zhang, Y.-H. Jing, Mater. Sci. Eng. B 196 (2015) 53–60.

[89]
Zhang X. Wu F. Wu X. Chen P. Deng N. J. Hazard Mater.2008157300307

X. Zhang, F. Wu, X. Wu, P. Chen, N. Deng, J. Hazard Mater. 157 (2008) 300–307.

10.1016/j.jhazmat.2007.12.098
[90]

M.L.P. Dalida, K.M.S. Amer, C.-C. Su, M.-C. Lu, Environ. Sci. Pollut. Res. 21 (2014) 1208–1216.

[91]
Chu W. Choy W.K. So T.Y. J. Hazard Mater.20071418691

W. Chu, W.K. Choy, T.Y. So, J. Hazard Mater. 141 (2007) 86–91.

10.1016/j.jhazmat.2006.06.093
[92]

L. Yang, L.E. Yu, M.B. Ray, Water Res. 42 (2008) 3480–3488.

[93]

G. Fan, H. Peng, J. Zhang, X. Zheng, G. Zhu, S. Wang, L. Hong, Catal. Sci. Technol. 8 (2018) 5906–5919.

[94]

L. Yang, L.E. Yu, M.B. Ray, Environ. Sci. Technol. 43 (2009) 460–465.

[95]

C. Deng, C. Ren, F. Wu, N. Deng, E.M. Glebov, I.P. Pozdnyakov, V.F. Plyusnin, React. Kinet. Mech. Catal. 100 (2010) 277–288.

[96]
de Luna M.D.G. Veciana M.L. Su C.-C. Lu M.-C. J. Hazard Mater.2012217-218200207

M.D.G. de Luna, M.L. Veciana, C.-C. Su, M.-C. Lu, J. Hazard Mater. 217-218 (2012) 200–207.

10.1016/j.jhazmat.2012.03.018
[97]

S. Bouafıa-Cherguı, H. Zemmourı, M. Chabanı, A. Bensmaılı, Desalin. Water Treat. 57 (2016) 16670–16677.

[98]
Reyes C. Fernández J. Freer J. Mondaca M.A. Zaror C. Malato S. Mansilla H.D. J. Photochem. Photobiol. A2006184141146

C. Reyes, J. Fernández, J. Freer, M.A. Mondaca, C. Zaror, S. Malato, H.D. Mansilla, J. Photochem. Photobiol. A 184 (2006) 141–146.

10.1016/j.jphotochem.2006.04.007
[99]

R.A. Palominos, M.A. Mondaca, A. Giraldo, G. Penuela, M. Pérez-Moya, H.D. Mansilla, Catal. Today 144 (2009) 100–105.

[100]
Ahmadi M. Ramezani Motlagh H. Jaafarzadeh N. Mostoufi A. Saeedi R. Barzegar G. Jorfi S. J. Environ. Manag.20171865563

M. Ahmadi, H. Ramezani Motlagh, N. Jaafarzadeh, A. Mostoufi, R. Saeedi, G. Barzegar, S. Jorfi, J. Environ. Manag. 186 (2017) 55–63.

10.1016/j.jenvman.2016.09.088
[101]
Yadav H.M. Kim J.-S. J. Alloys Compd.2016688123129

H.M. Yadav, J.-S. Kim, J. Alloys Compd. 688 (2016) 123–129.

10.1016/j.jallcom.2016.07.133
[102]
Ola O. Maroto-Valer M.M. J. Photochem. Photobiol., A C2015241642

O. Ola, M.M. Maroto-Valer, J. Photochem. Photobiol., A C 24 (2015) 16–42.

10.1016/j.jphotochemrev.2015.06.001
[103]

P. Wang, P.-S. Yap, T.-T. Lim, Appl. Catal., A 399 (2011) 252–261.

[104]

F. Chen, Q. Yang, J. Sun, F. Yao, S. Wang, Y. Wang, X. Wang, X. Li, C. Niu, D. Wang, G. Zeng, ACS Appl. Mater. Interfaces 8 (2016) 32887–32900.

[105]

X.-D. Zhu, Y.-J. Wang, R.-J. Sun, D.-M. Zhou, Chemosphere 92 (2013) 925–932.

[106]

A.Z. Aris, A.S. Shamsuddin, S.M. Praveena, Environ. Int. 69 (2014) 104–119.

[107]

X. Qu, P.J.J. Alvarez, Q. Li, Water Res. 47 (2013) 3931–3946.

[108]

T.S. Chen, T.C. Chen, K.J.C. Yeh, H.R. Chao, E.T. Liaw, C.Y. Hsieh, K.C. Chen, L.T. Hsieh, Y.L. Yeh, Sci. Total Environ. 408 (2010) 3223–3230.

[109]

H.M. Coleman, E.J. Routledge, J.P. Sumpter, B.R. Eggins, J.A. Byrne, Water Res. 38 (2004) 3233–3240.

[110]
Pan Z. Stemmler E.A. Cho H.J. Fan W. LeBlanc L.A. Patterson H.H. Amirbahman A. J. Hazard Mater.20142791725

Z. Pan, E.A. Stemmler, H.J. Cho, W. Fan, L.A. LeBlanc, H.H. Patterson, A. Amirbahman, J. Hazard Mater. 279 (2014) 17–25.

10.1016/j.jhazmat.2014.06.040
[111]

D. Wang, Y. Li, W. Zhang, Q. Wang, P. Wang, C. Wang, Environ. Sci. Pollut. Res. 20 (2013) 2321–2329.

[112]
Frontistis Z. Fatta-Kassinos D. Mantzavinos D. Xekoukoulotakis N.P. J. Chem. Technol. Biotechnol.2012871051105810.1002/jctb.3751

Z. Frontistis, D. Fatta-Kassinos, D. Mantzavinos, N.P. Xekoukoulotakis, J. Chem. Technol. Biotechnol. 87 (2012) 1051–1058.

[113]

Z. Frontistis, C. Drosou, K. Tyrovola, D. Mantzavinos, D. Fatta-Kassinos, D. Venieri, N.P. Xekoukoulotakis, Ind. Eng. Chem. Res. 51 (2012) 16552–16563.

[114]

A.R. Upreti, Y. Li, N. Khadgi, S. Naraginti, C. Zhang, RSC Adv. 6 (2016) 32761–32769.

[115]

Y. Li, Y. Wang, L. Liu, D. Wang, W. Zhang, Environ. Sci. Pollut. Res. 21 (2014) 5177–5186.

[116]

Y. Yang, L. Luo, M. Xiao, H. Li, X. Pan, F. Jiang, Mater. Sci. Semicond. Process. 40 (2015) 183–193.

[117]
Wang D. Li Y. Li Puma G. Wang C. Wang P. Zhang W. Wang Q. J. Hazard Mater.2015285277284

D. Wang, Y. Li, G. Li Puma, C. Wang, P. Wang, W. Zhang, Q. Wang, J. Hazard Mater. 285 (2015) 277–284.

10.1016/j.jhazmat.2014.10.060
[118]

X. Wei, J. Li, Z. Liu, X. Yang, S. Naraginti, X. Xu, X. Wang, RSC Adv. 8 (2018) 4329–4339.

[119]

M. Carballa, F. Omil, J.M. Lema, M.a. Llompart, C. Garcı́a-Jares, I. Rodrı́guez, M. Gómez, T. Ternes, Water Res. 38 (2004) 2918–2926.

[120]

X.S. Miao, C.D. Metcalfe, Anal. Chem. 75 (2003) 3731–3738.

[121]

C.G. Daughton, T.A. Ternes, Environ. Health Perspect. 107 (1999) 907–938.

[122]

L. Das, U. Maity, J.K. Basu, Process Saf. Environ. Protect. 92 (2014) 888–895.

[123]

R. Molinari, F. Pirillo, V. Loddo, L. Palmisano, Catal. Today 118 (2006) 205–213.

[124]

J. Choi, H. Lee, Y. Choi, S. Kim, S. Lee, S. Lee, W. Choi, J. Lee, Appl. Catal. B Environ. 147 (2014) 8–16.

[125]

J. Lee, W. Choi, Environ. Sci. Technol. 38 (2004) 4026–4033.

[126]

J. Xu, L. Li, C. Guo, Y. Zhang, W. Meng, Appl. Catal. B Environ. 130-131 (2013) 285–292.

[127]

C. Wang, M. Liu, Q. Li, Z. Ju, J. Huang, J. Li, H. Wang, J. Zhong, Vet. Immunol. Immunopathol. 139 (2011) 229–236.

[128]

B. Sambandam, A. Surenjan, L. Philip, T. Pradeep, ACS Sustain. Chem. Eng. 3 (2015) 1321–1329.

[129]

A. Dandapat, I. Horovitz, H. Gnayem, Y. Sasson, D. Avisar, T. Luxbacher, H. Mamane, ACS Omega 3 (2018) 10858–10865.

[130]

L. Tang, J.-j. Wang, C.-t. Jia, G.-x. Lv, G. Xu, W.-t. Li, L. Wang, J.-y. Zhang, M.-h. Wu, Appl. Catal. B Environ. 205 (2017) 587–596.

[131]
Horovitz I. Avisar D. Baker M.A. Grilli R. Lozzi L. Di Camillo D. Mamane H. J. Hazard Mater.201631098107

I. Horovitz, D. Avisar, M.A. Baker, R. Grilli, L. Lozzi, D. Di Camillo, H. Mamane, J. Hazard Mater. 310 (2016) 98–107.

10.1016/j.jhazmat.2016.02.008
[132]

L. Ismail, A. Rifai, C. Ferronato, L. Fine, F. Jaber, J.M. Chovelon, Appl. Catal. B Environ. 185 (2016) 88–99.

[133]

C.S. Kuo, C.F. Lin, P.K.A. Hong, Water Res. 74 (2015) 1–9.

[134]

G. Zhang, E.M. Wurtzler, X. He, M.N. Nadagouda, K. O'Shea, S.M. El-Sheikh, A.A. Ismail, D. Wendell, D.D. Dionysiou, Appl. Catal. B Environ. 163 (2015) 591–598.

[135]

L. Rizzo, C. Manaia, C. Merlin, T. Schwartz, C. Dagot, M.C. Ploy, I. Michael, D. FattaKassinos, Sci. Total Environ. 447 (2013) 345–360.

[136]

Y. Luo, W. Guo, H.H. Ngo, L.D. Nghiem, F.I. Hai, J. Zhang, S. Liang, X.C. Wang, Sci. Total Environ. 473-474 (2014) 619–641.

[137]

W. Irawaty, F.E. Soetaredjo, A. Ayucitra, Procedia Chem. 9 (2014) 131–138.

[138]
Nasuhoglu D. Yargeau V. Berk D. J. Hazard Mater.20111866775

D. Nasuhoglu, V. Yargeau, D. Berk, J. Hazard Mater. 186 (2011) 67–75.

10.1016/j.jhazmat.2010.10.080
[139]

S. Carbonaro, M.N. Sugihara, T.J. Strathmann, Appl. Catal. B Environ. 129 (2013) 1–12.

[140]

N. Rioja, P. Benguria, F.J. Peñas, S. Zorita, Environ. Sci. Pollut. Res. 21 (2014) 11168–11177.

[141]

S. Murgolo, F. Petronella, R. Ciannarella, R. Comparelli, A. Agostiano, M.L. Curri, G. Mascolo, Catal. Today 240 (2015) 114–124.

[142]
Zhu W. Li Z. He C. Faqian S. Zhou Y. J. Alloys Compd.2018754153162

W. Zhu, Z. Li, C. He, S. Faqian, Y. Zhou, J. Alloys Compd. 754 (2018) 153–162.

10.1016/j.jallcom.2018.04.286
[143]

C. Chen, W. Cai, M. Long, B. Zhou, Y. Wu, D. Wu, Y. Feng, ACS Nano 4 (2010) 6425–6432.

[144]

P.V. Kamat, J. Phys, Chem. Lett. 2 (2011) 242–251.

[145]

S. Yu, Y. Wang, F. Sun, R. Wang, Y. Zhou, Chem. Eng. J. 337 (2018) 183–192.

[146]

R. Andreozzi, R. Marotta, N. Pax eus, Chemosphere 50 (2003) 1319–1330.

[147]

Y. Zhang, S.U. Geißen, C. Gal, Chemosphere 73 (2008) 1151–1161.

[148]

L.A. Pérez-Estrada, M.I. Maldonado, W. Gernjak, A. Agüera, A.R. Fernández-Alba, M.M. Ballesteros, S. Malato, Catal. Today 101 (2005) 219–226.

[149]

P. Calza, V.A. Sakkas, C. Medana, C. Baiocchi, A. Dimou, E. Pelizzetti, T. Albanis, Appl. Catal. B Environ. 67 (2006) 197–205.

[150]

L. Rizzo, S. Meric, D. Kassinos, M. Guida, F. Russo, V. Belgiorno, Water Res. 43 (2009) 979–988.

[151]

N. Hashim, P. Natarajan, A.K. Ray, Ind. Eng. Chem. Res. 53 (2014) 18637–18646.

[152]

R. Abdelhafid, S. Houot, E. Barriuso, Biol. Fertil. Soils 30 (2000) 333–340.

[153]

P. Chen, Q. Zhang, Y. Su, L. Shen, F. Wang, H. Liu, Y. Liu, Z. Cai, W. Lv, G. Liu, Chem. Eng. J. 332 (2018) 737–748.

[154]

S. Hu, W. Yang, N. Li, H. Wang, J. Yang, Q. Chang, Small 14 (2018) 1803447.

[155]

H. Yu, R. Shi, Y. Zhao, G.I.N. Waterhouse, L.-Z. Wu, C.-H. Tung, T. Zhang, Adv. Mater. 28 (2016) 9454–9477.

[156]

K.A.S. Fernando, S. Sahu, Y. Liu, W.K. Lewis, E.A. Guliants, A. Jafariyan, P. Wang, C.E. Bunker, Y.-P. Sun, ACS Appl. Mater. Interfaces 7 (2015) 8363–8376.

[157]

E. Mugunthan, M.B. Saidutta, P.E. Jagadeeshbabu, Environ. Technol. (2017) 1–13.

[158]
Ziylan A. Ince N.H. J. Hazard. Mater.20111872436

A. Ziylan, N.H. Ince, J. Hazard. Mater. 187 (2011) 24–36.

10.1016/j.jhazmat.2011.01.057
[159]

L. Ferrando-Climent, N. Collado, G. Buttiglieri, M. Gros, I. Rodriguez-Roda, S. RodriguezMozaz, D. Barceló, Sci. Total Environ. 438 (2012) 404 –413.

[160]

J.P. Candido, S.J. Andrade, A.L. Fonseca, F.S. Silva, M.R.A. Silva, M.M. Kondo, Environ. Sci. Pollut. Res. 23 (2016) 19911–19920.

[161]

K.H. Hama Aziz, H. Miessner, S. Mueller, D. Kalass, D. Moeller, I. Khorshid, M.A.M. Rashid, Chem. Eng. J. 313 (2017) 1033–1041.

[162]

J.F. Góngora, P. Elizondo, A. Hernández-Ramírez, Photochem. Photobiol. Sci. 16 (2017) 31–37.

[163]

N. Jallouli, L.M. Pastrana-Martínez, A.R. Ribeiro, N.F.F. Moreira, J.L. Faria, O. Hentati, A.M.T. Silva, M. Ksibi, Chem. Eng. J. 334 (2018) 976–984.

[164]

I.K. Konstantinou, T.A. Albanis, Appl. Catal. B Environ. 49 (2004) 1–14.

[165]
Kumar S.G. Devi L.G. J. Phys. Chem. A2011115132111324110.1021/jp204364a

S.G. Kumar, L.G. Devi, J. Phys. Chem. A 115 (2011) 13211–13241.

[166]
Braz F.S. Silva M.R.A. Silva F.v.S. Andrade S.J. Fonseca A.L. Kondo M.r.M. J. Environ. Protect.201457

F.S. Braz, M.R.A. Silva, F.v.S. Silva, S.J. Andrade, A.L. Fonseca, M.r.M. Kondo, J. Environ. Protect. 5 (2014) 7, 07.

[167]

A. Kezzim, A. Boudjemaa, A. Belhadi, M. Trari, Res. Chem. Intermed. 43 (2017) 3727–3743.

[168]

F. Li, Y. Kang, M. Chen, G. Liu, W. Lv, K. Yao, P. Chen, H. Huang, Chemosphere 150 (2016) 139–144.

[169]
Augugliaro V. Litter M. Palmisano L. Soria J. J. Photochem. Photobiol., A C20067127144

V. Augugliaro, M. Litter, L. Palmisano, J. Soria, J. Photochem. Photobiol., A C 7 (2006) 127–144.

10.1016/j.jphotochemrev.2006.12.001
[170]

Z.-d. Lei, J.-j. Wang, L. Wang, X.-y. Yang, G. Xu, L. Tang, J. Hazard, Materials 312 (2016) 298–306.

[171]

D.K.L. Chan, P.L. Cheung, J.C. Yu, Beilstein J. Nanotechnol. 5 (2014) 689–695.

[172]
Li L.-s. Yan X. J. Phys. Chem. Lett.201012572257610.1021/jz100862f

L.-s. Li, X. Yan, J. Phys. Chem. Lett. 1 (2010) 2572–2576.

[173]

J. Wang, L. Tang, G. Zeng, Y. Deng, Y. Liu, L. Wang, Y. Zhou, Z. Guo, J. Wang, C. Zhang, Appl. Catal. B Environ. 209 (2017) 285–294.

[174]
Wang X. Tang Y. Chen Z. Lim T.-T. J. Mater. Chem.201222231492315810.1039/c2jm35503e

X. Wang, Y. Tang, Z. Chen, T.-T. Lim, J. Mater. Chem. 22 (2012) 23149–23158.

[175]

F. Méndez-Arriaga, S. Esplugas, J. Giménez, Water Res. 42 (2008) 585–594.

[176]
Li X. Vogt F.G. Hayes D. Mansour H.M. J. Aerosol Med. Pulm. Drug Deliv.201427819310.1089/jamp.2013.1078

X. Li, F.G. Vogt, D. Hayes, H.M. Mansour, J. Aerosol Med. Pulm. Drug Deliv. 27 (2014) 81–93.

[177]
Salgado R. Pereira V.J. Carvalho G. Soeiro R. Gaffney V. Almeida C. Cardoso V.V. Ferreira E. Benoliel M.J. Ternes T.A. Oehmen A. Reis M.A.M. Noronha J.P. J. Hazard Mater.2013244-245516527

R. Salgado, V.J. Pereira, G. Carvalho, R. Soeiro, V. Gaffney, C. Almeida, V.V. Cardoso, E. Ferreira, M.J. Benoliel, T.A. Ternes, A. Oehmen, M.A.M. Reis, J.P. Noronha, J. Hazard Mater. 244-245 (2013) 516–527.

10.1016/j.jhazmat.2012.10.039
[178]

R. Salgado, R. Marques, J.P. Noronha, G. Carvalho, A. Oehmen, M.A.M. Reis, Environ. Sci. Pollut. Res. 19 (2012) 1818–1827.

[179]

C. Martínez, S. Vilarino, M.I. Fernández, J. Faria, M.C. L, J.A. Santaballa, Appl. Catal. B Environ. 142-143 (2013) 633–646.

[180]
Neppolian B. Choi H.C. Sakthivel S. Arabindoo B. Murugesan V. J. Hazard Mater.200289303317

B. Neppolian, H.C. Choi, S. Sakthivel, B. Arabindoo, V. Murugesan, J. Hazard Mater. 89 (2002) 303–317.

[181]

H. Wang, L. Zhang, Z. Chen, J. Hu, S. Li, Z. Wang, J. Liu, X. Wang, Chem. Soc. Rev. 43 (2014) 5234–5244.

[182]

K.J. Laidler, Pure Appl. Chem. 68 (1996) 149–192.

[183]

L. Djouadi, H. Khalaf, H. Boukhatem, H. Boutoumi, A. Kezzime, J.A. Santaballa, M. Canle, Appl. Clay Sci. 166 (2018) 27–37.

[184]

C. Martínez, S. Vilariño, M.I. Fernández, J. Faria, M.L. Canle, J.A. Santaballa, Appl. Catal. B Environ. 142-143 (2013) 633–646.

[185]
Musa K.A.K. Matxain J.M. Eriksson L.A. J. Med. Chem.2007501735174310.1021/jm060697k

K.A.K. Musa, J.M. Matxain, L.A. Eriksson, J. Med. Chem. 50 (2007) 1735–1743.

[186]

V. Matamoros, A. Duhec, J. Albaigés, J.M. Bayona, Water, Air, Soil Pollut. 196 (2009) 161–168.

[187]
Farré M. Ferrer I. Ginebreda A. Figueras M. Olivella L. Tirapu L. Vilanova M. Barceló D. J. Chromatogr. A2001938187197

M. Farré, I. Ferrer, A. Ginebreda, M. Figueras, L. Olivella, L. Tirapu, M. Vilanova, D. Barceló, J. Chromatogr. A 938 (2001) 187 –197.

10.1016/S0021-9673(01)01154-2
[188]

J.L. Santos, I. Aparicio, E. Alonso, M. Callejón, Anal. Chim. Acta 550 (2005) 116 –122.

[189]
Méndez-Arriaga F. Gimenez J. Esplugas S. J. Adv. Oxid. Technol.200811435444

F. Méndez-Arriaga, J. Gimenez, S. Esplugas, J. Adv. Oxid. Technol. 11 (2008) 435–444.

10.1515/jaots-2008-0302
[190]

D. Kanakaraju, C.A. Motti, B.D. Glass, M. Oelgemöller, Environ. Sci. Pollut. Res. 23 (2016) 17437–17448.

[191]
Liang R. Hu A. Li W. Zhou Y.N. J. Nanoparticle Res.2013151990

R. Liang, A. Hu, W. Li, Y.N. Zhou, J. Nanoparticle Res. 15 (2013) 1990.

10.1007/s11051-013-1990-x
[192]

D. Štrbac, C.A. Aggelopoulos, G. Štrbac, M. Dimitropoulos, M. Novaković, T. Ivetić, S.N. Yannopoulos, Process Saf. Environ. Protect. 113 (2018) 174–183.

[193]

F. Torki, H. Faghihian, Photochem. Photobiol. 94 (2018) 491–502.

[194]

C. Regmi, E. Maya-Flores, S.W. Lee, V. Rodríguez-González, Nanotechnology 29 (2018) 375603.

[195]

F. Wang, Y. Wang, Y. Feng, Y. Zeng, Z. Xie, Q. Zhang, Y. Su, P. Chen, Y. Liu, K. Yao, W. Lv, G. Liu, Appl. Catal. B Environ. 221 (2018) 510–520.

[196]
Jallouli N. Elghniji K. Hentati O. Ribeiro A.R. Silva A.M.T. Ksibi M. J. Hazard Mater.2016304329336

N. Jallouli, K. Elghniji, O. Hentati, A.R. Ribeiro, A.M.T. Silva, M. Ksibi, J. Hazard Mater. 304 (2016) 329–336.

[197]
Hilton M.J. Thomas K.V. J. Chromatogr. A20031015129141

M.J. Hilton, K.V. Thomas, J. Chromatogr. A 1015 (2003) 129–141.

[198]

N. Cimolai, Expet Rev. Clin. Pharmacol. 6 (2013) 289–305.

[199]

P.H. Roberts, K.V. Thomas, Sci. Total Environ. 356 (2006) 143–153.

[200]

S. Khalaf, J.H. Shoqeir, L. Scrano, R. Karaman, S.A. Bufo, Environ. Sci. Pollut. Res. 26 (2019) 19025–19034.

[201]

M. Rathod, P.G. Moradeeya, S. Haldar, S. Basha, Photochem. Photobiol. Sci. 17 (2018) 1301–1309.

[202]
Shirzadi A. Nezamzadeh-Ejhieh A. J. Mol. Catal. Chem.2016411222229

A. Shirzadi, A. Nezamzadeh-Ejhieh, J. Mol. Catal. Chem. 411 (2016) 222–229.

[203]

B. Li, Y. Wang, Superlattice. Microst. 47 (2010) 615–623.

[204]

S. Jung, K. Yong, Chem. Commun. 47 (2011) 2643–2645.

[205]

R. Andreozzi, V. Caprio, C. Ciniglia, M. De Champdoré, R. Lo Giudice, R. Marotta, E. Zuccato, Environ. Sci. Technol. 38 (2004) 6832–6838.

[206]

E.S. Elmolla, M. Chaudhuri, Desalination 252 (2010) 46–52.

[207]
Elmolla E.S. Chaudhuri M. J. Hazard Mater.2010173445449

E.S. Elmolla, M. Chaudhuri, J. Hazard Mater. 173 (2010) 445–449.

[208]
Dimitrakopoulou D. Rethemiotaki I. Frontistis Z. Xekoukoulotakis N.P. Venieri D. Mantzavinos D. J. Environ. Manag.201298168174

D. Dimitrakopoulou, I. Rethemiotaki, Z. Frontistis, N.P. Xekoukoulotakis, D. Venieri, D. Mantzavinos, J. Environ. Manag. 98 (2012) 168–174.

[209]

N. Boussatha, M. Gilliot, H. Ghoualem, J. Martin, Mater. Res. Bull. 99 (2018) 485–490.

[210]
Gar Alalm M. Tawfik A. Ookawara S. J. Environ. Chem. Eng.2016419291937

M. Gar Alalm, A. Tawfik, S. Ookawara, J. Environ. Chem. Eng. 4 (2016) 1929–1937.

[211]

L.M. Pastrana-Martínez, S. Morales-Torres, S.A.C. Carabineiro, J.G. Buijnsters, J.L. Figueiredo, A.M.T. Silva, J.L. Faria, Appl. Surf. Sci. 458 (2018) 839–848.

[212]
Serpone N. Texier I. Emeline A.V. Pichat P. Hidaka H. Zhao J. J. Photochem. Photobiol. A2000136145155

N. Serpone, I. Texier, A.V. Emeline, P. Pichat, H. Hidaka, J. Zhao, J. Photochem. Photobiol. A 136 (2000) 145–155.

[213]

C. Minero, G. Mariella, V. Maurino, D. Vione, E. Pelizzetti, Langmuir 16 (2000) 8964–8972.

[214]

K.H. Leong, B.L. Gan, S. Ibrahim, P. Saravanan, Appl. Surf. Sci. 319 (2014) 128–135.

[215]

Q. Xiang, J. Yu, B. Cheng, H.C. Ong, Chem. Asian J. 5 (2010) 1466–1474.

[216]

L. Qi, X. Liang, R. Ji, J. Wang, H. Li, P. Wang, Nongye Jixie Xuebao/Transactions of the Chinese Society for Agricultural Machinery 44 (2013) 193–197.

[217]

R. Abazari, A.R. Mahjoub, Inorg. Chem. 57 (2018) 2529–2545.

[218]
Li Q. Jia R. Shao J. He Y. J. Clean. Prod.2019209755761

Q. Li, R. Jia, J. Shao, Y. He, J. Clean. Prod. 209 (2019) 755–761.

[219]
Lamm A. Gozlan I. Rotstein A. Avisar D. J. Environ. Sci. Health - Part A Toxic/Hazard. Subst. Environ. Eng.2009441512151710.1080/10934520903263306

A. Lamm, I. Gozlan, A. Rotstein, D. Avisar, J. Environ. Sci. Health - Part A Toxic/Hazard. Subst. Environ. Eng. 44 (2009) 1512–1517.

[220]

D. Kanakaraju, J. Kockler, C.A. Motti, B.D. Glass, M. Oelgemoller, Appl. Catal. B Environ. 166-167 (2015) 45–55.

[221]

S. Babić, M. Periša, I. Škorić, Chemosphere 91 (2013) 1635–1642.

[222]
Sayed M. Shah L.A. Khan J.A. Shah N.S. Nisar J. Khan H.M. Zhang P. Khan A.R. J. Phys. Chem. A20161209916993110.1021/acs.jpca.6b09719

M. Sayed, L.A. Shah, J.A. Khan, N.S. Shah, J. Nisar, H.M. Khan, P. Zhang, A.R. Khan, J. Phys. Chem. A 120 (2016) 9916–9931.

[223]

H. Yang, L. Mei, P. Wang, J. Genereux, Y. Wang, B. Yi, C. Au, L. Dang, P. Feng, RSC Adv. 7 (2017) 45721–45732.

[224]
Chen M. Chu W. J. Hazard Mater.2012219-220183189

M. Chen, W. Chu, J. Hazard Mater. 219-220 (2012) 183–189.

[225]
Zhou S.-L. Zhang S. Liu F. Liu J.-J. Xue J.-J. Yang D.-J. Chang C.-T. J. Photochem. Photobiol. A201632897104

S.-L. Zhou, S. Zhang, F. Liu, J.-J. Liu, J.-J. Xue, D.-J. Yang, C.-T. Chang, J. Photochem. Photobiol. A 328 (2016) 97–104.

[226]
Ma X. Ma Z. Liao T. Liu X. Zhang Y. Li L. Li W. Hou B. J. Alloys Compd.20177026874

X. Ma, Z. Ma, T. Liao, X. Liu, Y. Zhang, L. Li, W. Li, B. Hou, J. Alloys Compd. 702 (2017) 68–74.

[227]
Kumar A. Sharma S.K. Sharma G. Al-Muhtaseb A.a.H. Naushad M. Ghfar A.A. Stadler F.J. J. Hazard Mater.2019364429440

A. Kumar, S.K. Sharma, G. Sharma, A.a.H. Al-Muhtaseb, M. Naushad, A.A. Ghfar, F.J. Stadler, J. Hazard Mater. 364 (2019) 429–440.

[228]

J. Gou, Q. Ma, X. Deng, Y. Cui, H. Zhang, X. Cheng, X. Li, M. Xie, Q. Cheng, Chem. Eng. J. 308 (2017) 818–826.

[229]

G.G. Ying, R.S. Kookana, Environ. Int. 33 (2007) 199–205.

[230]

M.G. Cantwell, B.A. Wilson, J. Zhu, G.T. Wallace, J.W. King, C.R. Olsen, R.M. Burgess, J.P. Smith, Chemosphere 78 (2010) 347–352.

[231]

L. Sanchez-Prado, M. Llompart, M. Lores, C. García-Jares, J.M. Bayona, R. Cela, Chemosphere 65 (2006) 1338–1347.

[232]

J.C. Yu, T.Y. Kwong, Q. Luo, Z. Cai, Chemosphere 65 (2006) 390–399.

[233]
Kosera V.S. Cruz T.M. Chaves E.S. Tiburtius E.R.L. J. Photochem. Photobiol. A2017344184191

V.S. Kosera, T.M. Cruz, E.S. Chaves, E.R.L. Tiburtius, J. Photochem. Photobiol. A 344 (2017) 184–191.

[234]

J. Niu, Y. Dai, L. Yin, J. Shang, J.C. Crittenden, Phys. Chem. Chem. Phys. 17 (2015) 17421–17428.

[235]
Azarpira H. Sadani M. Abtahi M. ghaderpoori M. Rezaei S. Atafar Z. Mohseni S.M. Sarkhosh M. Vaezi N. Keramati H. Hosseini Pouya R. Akbari A. fanai V. J. Photochem. Photobiol. A2019371423432

H. Azarpira, M. Sadani, M. Abtahi, M. ghaderpoori, S. Rezaei, Z. Atafar, S.M. Mohseni, M. Sarkhosh, N. Vaezi, H. Keramati, R. Hosseini Pouya, A. Akbari, V. fanai, J. Photochem. Photobiol. A 371 (2019) 423–432.

[236]

S. Rafqah, P. Wong-Wah-Chung, S. Nelieu, J. Einhorn, M. Sarakha, Appl. Catal. B Environ. 66 (2006) 119–125.

[237]

S. Martínez, J.C. Morales-Mejía, P.P. Hernández, L. Santiago, R. Almanza, Energy Procedia 57 (2014) 3014–3020.

[238]

M. Hwangbo, E.C. Claycomb, Y. Liu, T.E.G. Alivio, S. Banerjee, K.-H. Chu, Sci. Total Environ. 649 (2019) 1189–1197.

[239]
Cervantes Rincón N. Hammouda S.B. Sillanpää M. Escobar Barrios V. J. Environ. Chem. Eng.2018665546567

N. Cervantes Rincón, S.B. Hammouda, M. Sillanpää, V. Escobar Barrios, J. Environ. Chem. Eng. 6 (2018) 6554–6567.

[240]

M. Schlesinger, M. Weber, S. Schulze, M. Hietschold, M. Mehring, Chemistry 2 (2013) 146–155.

[241]

Y. Dai, L. Yin, Mater. Lett. 142 (2015) 225–228.

[242]
Constantin L.A. Nitoi I. Cristea N.I. Constantin M.A. J. Ind. Eng. Chem.201858155162

L.A. Constantin, I. Nitoi, N.I. Cristea, M.A. Constantin, J. Ind. Eng. Chem. 58 (2018) 155–162.

[243]

J. Niu, Y. Dai, L. Yin, J. Shang, J.C. Crittenden Phys, Chem. Chem. Phys. 17 (2015) 17421–17428.

[244]

J. Radjenović, C. Sirtori, M. Petrović, D. Barceló, S. Malato, Appl. Catal. B Environ. 89 (2009) 255–264.

[245]

G. Márquez, E.M. Rodríguez, M.I. Maldonado, P.M. Álvarez, Separ. Purif. Technol. 136 (2014) 18–26.

[246]
Prieto-Rodriguez L. Miralles-Cuevas S. Oller I. Agüera A. Puma G.L. Malato S. J. Hazard Mater.2012211-212131137

L. Prieto-Rodriguez, S. Miralles-Cuevas, I. Oller, A. Agüera, G.L. Puma, S. Malato, J. Hazard Mater. 211-212 (2012) 131–137.

[247]
Tammaro M. Fiandra V. Mascolo M.C. Salluzzo A. Riccio C. Lancia A. J. Environ. Chem. Eng.2017532243234

M. Tammaro, V. Fiandra, M.C. Mascolo, A. Salluzzo, C. Riccio, A. Lancia, J. Environ. Chem. Eng. 5 (2017) 3224–3234.

[248]
Bhatia V. Malekshoar G. Dhir A. Ray A.K. J. Photochem. Photobiol. A2017332182187

V. Bhatia, G. Malekshoar, A. Dhir, A.K. Ray, J. Photochem. Photobiol. A 332 (2017) 182–187.

[249]
Ling Y. Liao G. Xie Y. Yin J. Huang J. Feng W. Li L. J. Photochem. Photobiol. A2016329280286

Y. Ling, G. Liao, Y. Xie, J. Yin, J. Huang, W. Feng, L. Li, J. Photochem. Photobiol. A 329 (2016) 280–286.

[250]

V. Rogé, C. Guignard, G. Lamblin, F. Laporte, I. Fechete, F. Garin, A. Dinia, D. Lenoble, Catal. Today 306 (2018) 215–222.

[251]

A. Serrà, R. Artal, J. García-Amorós, B. Sepúlveda, E. Gómez, J. Nogués, L. Philippe, Adv. Sci. 7 (2020) 1902447.

[252]

A. Serrà, P. Pip, E. Gómez, L. Philippe, Appl. Catal. B Environ. 268 (2020) 118745.

[253]

J. Hu, X. Jing, L. Zhai, J. Guo, K. Lu, L. Mao, Chemosphere 220 (2019) 77–85.

[254]
Yang H. An T. Li G. Song W. Cooper W.J. Luo H. Guo X. J. Hazard Mater.2010179834839

H. Yang, T. An, G. Li, W. Song, W.J. Cooper, H. Luo, X. Guo, J. Hazard Mater. 179 (2010) 834–839.

[255]
Ji Y. Zhou L. Ferronato C. Yang X. Salvador A. Zeng C. Chovelon J.-M. J. Photochem. Photobiol. A20132543544

Y. Ji, L. Zhou, C. Ferronato, X. Yang, A. Salvador, C. Zeng, J.-M. Chovelon, J. Photochem. Photobiol. A 254 (2013) 35–44.

[256]
Small I. Smith J. Ward P. Suter P. Dutkowski R. J. Antimicrob. Chemother.200555i5i21

I. Small, J. Smith, P. Ward, P. Suter, R. Dutkowski, J. Antimicrob. Chemother. 55 (2005) i5–i21.

[257]
Wang W.-L. Wu Q.-Y. Wang Z.-M. Niu L.-X. Wang C. Sun M.-C. Hu H.-Y. J. Environ. Econ. Manag.2015162326333

W.-L. Wang, Q.-Y. Wu, Z.-M. Wang, L.-X. Niu, C. Wang, M.-C. Sun, H.-Y. Hu, J. Environ. Econ. Manag. 162 (2015) 326–333.

[258]

H. Wu, X.-L. Wu, Z.-M. Wang, H. Aoki, S. Kutsuna, K. Jimura, S. Hayashi, Appl. Catal. B Environ. 207 (2017) 255–266.

[259]

W.-L. Wang, Q.-Y. Wu, Z.-M. Wang, H.-Y. Hu, N. Negishi, M. Torimura, Chemosphere 131 (2015) 41–47.

Nano Materials Science
Pages 25-46
Cite this article:
Kar P, Shukla K, Jain P, et al. Semiconductor based photocatalysts for detoxification of emerging pharmaceutical pollutants from aquatic systems: A critical review. Nano Materials Science, 2021, 3(1): 25-46. https://doi.org/10.1016/j.nanoms.2020.11.001

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Received: 06 September 2020
Accepted: 28 October 2020
Published: 06 November 2020
© 2020 Chongqing University.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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