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References

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1 Alade, A.O., Jameel, A.T., Muyubi, S.A. et al. (2011). Removal of oil and grease as emerging pollutants of concern (EPC) in wastewater stream. IIUM Engineering Journal 12 (4). doi:10.31436/iiumej.v12i4.218.

2 Akpor, O.B., Ohiobor, G.O., and Olaolu, T.D. (2014). Heavy metal pollutants in wastewater effluents: sources, effects and remediation. Advances in Bioscience and Bioengineering 2 (4): 37. doi:10.11648/j.abb.20140204.11.

3 Arbabi, M., Hemati, S., and Amiri, M. (2015). Removal of lead ions from industrial wastewater: A review of removal methods. International Journal of Epidemiologic Research 2 (2): 105–109.

4 Azad, A.K. (ed.) (2018). Advances in eco‐fuels for a sustainable environment. Woodhead Publishing.

5 Barak, H., Brenner, A., Sivan, A., and Kushmaro, A. (2020). Temporal distribution of microbial community in an industrial wastewater treatment system following crash and during recovery periods. Chemosphere 258: 127–271.

6 Barakat, M.A. (2011). New trends in removing heavy metals from industrial wastewater. Arabian Journal of Chemistry 4 (4): 361–377.

7 Barrows, J.N., Lipman, A.L., and Belai, N. (2014). History of US regulation of color additives and colorants. In: Food Additives and Packaging (ed. V. Komolprasert and: Turowski), 57–71. American Chemical Society.

8 Bilińska, L., Blus, K., Bilińska, M. et al. (2020). Industrial textile wastewater ozone treatment: catalyst selection. Catalysts 10 (6): 611. doi:10.3390/catal10060611.

9 Bollmann, U.E., Tang, C., Eriksson, E. et al. (2014). Biocides in urban wastewater treatment plant influent at dry and wet weather: Concentrations, mass flows and possible sources. Water Research 60: 64–74. doi:10.1016/j.watres.2014.04.014.

10 Buthiyappan, A. and Raman, A.A.A. (2019). Energy intensified integrated advanced oxidation technology for the treatment of recalcitrant industrial wastewater. Journal of Cleaner Production 206: 1025–1040.

11 Calderón, O.A.R., Abdeldayem, O.M., Pugazhendhi, A., and Rene, E.R. (2020). Current updates and perspectives of biosorption technology: an alternative for the removal of heavy metals from wastewater. Current Pollution Reports 6 (1): 8–27.

12 Chávez, A.M., Gimeno, O., Rey, A. et al. (2019). Treatment of highly polluted industrial wastewater by means of sequential aerobic biological oxidation‐ozone based AOPs. Chemical Engineering Journal 361: 89–98.

13 Chequer, F.D., De Oliveira, G.R., Ferraz, E.A. et al. (2013). Textile dyes: dyeing process and environmental impact. Eco‐Friendly Textile Dyeing and Finishing 6 (6): 151–176.

14 Das, S. and Dash, H. (2019). Microbial Diversity in the Genomic Era. Elsevier.

15 Diphare, M.J., Pilusa, J., Muzenda, E., and Mollagee, M. (2013). A review of waste lubricating grease management. In: 2nd International Conference on Environment, Agriculture and Food Sciences, 131–134.

16 Dubber, D. and Gray, N.F. (2010). Replacement of chemical oxygen demand (COD) with total organic carbon (TOC) for monitoring wastewater treatment performance to minimize disposal of toxic analytical waste. Journal of Environmental Science and Health Part A 45 (12): 1595–1600. doi:10.1080/10934529.2010.506116.

17 Duffus, J.H. (2002). Heavy metals a meaningless term? (IUPAC Technical Report). Pure and Applied Chemistry 74 (5): 793–807.

18 Durak, J., Rokoszak, T., Skiba, A. et al. (2020). Environmental risk assessment of priority biocidal substances on Polish surface water sample. Environmental Science and Pollution Research. doi:10.1007/s11356‐020‐11581‐7.

19 Duruibe, J.O., Ogwuegbu, M.O.C., and Egwurugwu, J.N. (2007). Heavy metal pollution and human biotoxic effects. International Journal of Physical Sciences 2 (5): 112–118.

20 ECHA (European Chemicals Agency). (2017). Guidance on the biocidal products regulation volume IV environment – assessment and evaluation (parts B + C): Version 2.0.

21 Eckenfelder, W.W., Ford, D.L., and Englande, A.J. (2008). Industrial Water Quality, 4e. McGraw‐Hill.

22 Ekpu, A.O. (1995). Environmental impact of oil on water: a comparative overview of the law and policy in the United States and Nigeria. Denv. J. Int'l L. & Pol'y 24: 55.

23 Emsley, J. (2011). Nature's Building Blocks: An A‐Z Guide to the Elements. Oxford University Press.

24 EPA (US Environmental Protection Agency). (2017). Technical overview of volatile organic compounds. www.epa.gov/indoor‐air‐quality‐iaq/technical‐overview‐volatile‐organic‐compounds (accessed 10 April 2021).

25 EPA (US Environmental Protection Agency). (2020). Contaminants of emerging concern including pharmaceuticals and personal care products. www.epa.gov/wqc/contaminants‐emerging‐concern‐including‐pharmaceuticals‐and‐personal‐care‐products (accessed 11 April 2021).

26 Hallenbeck, W.H. (1986). Human health effects of exposure to cadmium. In: Cadmium in the Environment (ed. H. Mislin and O. Ravera), 131–137. Birkhäuser Basel. doi:10.1007/978‐3‐0348‐7238‐6_17.

27 Hamid, H. and Eskicioglu, C. (2012). Fate of estrogenic hormones in wastewater and sludge treatment: A review of properties and analytical detection techniques in sludge matrix. Water Research 46: 5813–5833.

28 Hargreaves, A.J., Vale, P., Whelan, J. et al. (2016). Mercury and antimony in wastewater: fate and treatment. Water, Air, and Soil Pollution 227 (3): 89.

29 Hashemi, M.S.H., Eslami, F., and Karimzadeh, R. (2018). Organic contaminants removal from industrial wastewater by CTAB treated synthetic zeolite Y. Journal of Environmental Management 233: 785–792, doi:10.1016/j.jenvman.2018.10.003.

30 Hassaan, M.A. and El Nemr, A. (2017). Health and environmental impacts of dyes: mini review. Am J Environ Sci Eng 1 (3): 64–67.

31 Katheresan, V., Kansedo, J., and Lau, S.Y. (2018). Efficiency of various recent wastewater dye removal methods: a review. Journal of Environmental Chemical Engineering 6 (4): 4676–4697.

32 Knapp, J.S. and Bromley‐Challoner, K.C.A. (2003). Recalcitrant organic compounds. In: Handbook of Water and Wastewater Microbiology. doi:10.1016/b978‐012470100‐7/50035‐2.

33 Kurniawan, T.A., Chan, G.Y., Lo, W.H., and Babel, S. (2006). Comparisons of low‐cost adsorbents for treating wastewaters laden with heavy metals. Science of the Total Environment 366 (2–3): 409–426.

34 Lellis, B., Fávaro‐Polonio, C.Z., Pamphile, J.A. et al. (2019). Effects of textile dyes on health and the environment and bioremediation potential of living organisms. Biotechnology Research and Innovation 3 (2): 297–290.

35  Li, X., Chen, W., Ma, L. et al. (2019). Characteristics and mechanisms of catalytic ozonation with Fe shaving‐based catalyst in industrial wastewater advanced treatment. Journal of Cleaner Production 222: 174–181.

36 Mohr, S., Schröder, H., Feibicke, M. et al. (2008). Long‐term effects of the antifouling booster biocide Irgarol 1051 on periphyton, plankton and ecosystem function in freshwater pond mesocosms. Aquatic Toxicology 90: 109–120. doi:10.1016/j.aquatox.2008.08.004.

37 Nawaz, T. and Sengupta, S. (2019). Advances in Water Purification Techniques. Elsevier. doi:10.1016/B978‐0‐12‐814790‐0.00004‐1.

38 Odeigah, P.G.C., Nurudeen, O., and Amund, O.O. (1997). Genotoxicity of oil field wastewater in Nigeria. Hereditas 126 (2): 161–167.

39 Pirilä, M., Saouabe, M., Ojala, S. et al. (2015). Photocatalytic degradation of organic pollutants in wastewater. Top Catal 58: 1085–1099, doi:10.1007/s11244‐015‐0477‐7.

40 Prada‐Vásquez, M.A., Estrada‐Flórez, S.E., Serna‐Galvis, E.A., and Torres‐Palma, R.A. (2020). Developments in the intensification of photo‐Fenton and ozonation‐based processes for the removal of contaminants of emerging concern in Ibero‐American countries. Science of the Total Environment 765. doi:10.1016/j.scitotenv.2020.142699.

41 Salimi, M., Esrafili, A., Gholami, M. et al. (2017). Contaminants of emerging concern: a review of new approach in AOP technologies. Environ Monit Assess 189 (414): 1–22.

42 Sharma, H., Rawal, N., and Mathew, B.B. (2015). The characteristics, toxicity and effects of cadmium. International Journal of Nanotechnology and Nanoscience 3: 1–9.

43 Silva, V., Silva, C., Soares, P. et al. (2020). Isothiazolinone biocides: chemistry, biological, and toxicity profiles. Molecules 25 (4): 991. doi:10.3390/molecules25040991.

44 Sönnichsen, N. (2021). Lubricants – statistics and facts. www.statista.com/topics/5263/lubricants‐industry (accessed 20 April 2021).

45 Stockholm Convention on Persistent Organic Pollutants (2001). http://chm.pops.int/TheConvention/ThePOPs/AllPOPs/tabid/2509/Default.aspx.

46 Suez. (n.d.). Oil industry. www.suezwaterhandbook.com/water‐and‐generalities/what‐water‐should‐we‐treat‐and‐why/industrial‐effluent/oil‐industry (accessed 13 April 2021).

47 Trojanowicz, M. (2020). Removal of persistent organic pollutants (POPs) from waters and wastewaters by the use of ionizing radiation. Science of the Total Environment 718: 134425.

48 Wainwright, M. (2008). Dyes in the development of drugs and pharmaceuticals. Dyes and Pigments 76 (3): 582–589.

49 Vanraes, P., Ghodbane, H., Davister, D. et al. (2017). Removal of several pesticides in a falling water film DBD reactor with activated carbon textile: Energy efficiency. Water Research 116: 1–12.

50 Vanraes, P., Wardenier, N., Surmont, P. et al. (2018). Removal of alachlor, diuron and isoproturon in water in a falling film dielectric barrier discharge (DBD) reactor combined with adsorption on activated carbon textile: Reaction mechanisms and oxidation by‐products. Journal of Hazardous Materials 354: 180–190. doi:10.1016/j.jhazmat.2018.05.007.

51 WHO (World Health Organization). (1989). Indoor air uality: organic pollutants. Report on a WHO Meeting, Berlin, 23–27 August 1987. EURO Reports and Studies 111. Copenhagen, World Health Organization Regional Office for Europe.

52 WHO (World Health Organization). (2019). Preventing disease through healthy environments: exposure to arsenic: a major public health concern (No. WHO/CED/PHE/EPE/19.4.1).

53  WHO (World Health Organization). (2020). 10 chemicals of public health concern. https://www.who.int/news‐room/photo‐story/photo‐story‐detail/10‐chemicals‐of‐public‐health‐concern (accessed 6 April 2021).

54 Yadav, M., Gupta, R., and Sharma, R.K. (2019). Green and sustainable pathways for wastewater purification. In: Advances in Water Purification Techniques (ed. S. Ahuja), 355–383. doi:10.1016/B978‐0‐12‐814790‐0.00014‐4.

55 Yeh, S.H., Lai, C.H., Lin, C.H. et al. (2011). Estimating cancer risk increment from air pollutant exposure for sewer workers working in an industrial city. Aerosol Air Qual. Res. 11: 120–127.

56 Yu, L., Han, M., and He, F. (2017). A review of treating oily wastewater. Arabian Journal of Chemistry 10: S1913–S1922.

57 Zhang, Y., Wei, C., and Yan, B. (2019). Emission characteristics and associated health risk assessment of volatile organic compounds from a typical coking wastewater treatment plant. Science of the Total Environment 693: 133417.

Biosorption for Wastewater Contaminants

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