References

  1. E.M. Thurman, Organic Geochemistry of Natural Waters, Springer Science and Business Media, Zotero Program, 2012.
  2. E.M. Perdue, E.T. Gjessing, W. Glaze, Organic Acids in Aquatic Ecosystems, Wiley, Zotero Program, 1990.
  3. A. Chebbi, P. Carlier, Carboxylic acids in the troposphere, occurrence, sources, and sinks: a review, Atmos. Environ., 30 (1996) 4233–4249.
  4. R.W. Talbot, K.M. Beecher, R.C. Harriss, W.R. Cofer III, Atmospheric geochemistry of formic and acetic acids at a midlatitude temperate site, J. Geophys. Res.: Atmos., 93 (1988) 1638–1652.
  5. D.A. Hegg, S. Gao, H. Jonsson, Measurements of selected dicarboxylic acids in marine cloud water, Atmos. Res., 62 (2002) 1–10.
  6. W.C. Keene, J.N. Galloway, J. David Holden Jr., Measurement of weak organic acidity in precipitation from remote areas of the world, J. Geophys. Res. C: Oceans, 88 (1983) 5122–5130.
  7. M. Löflund, A. Kasper-Giebl, B. Schuster, H. Giebl, R. Hitzenberger, H. Puxbaum, Formic, acetic, oxalic, malonic and succinic acid concentrations and their contribution to organic carbon in cloud water, Atmos. Environ., 36 (2002) 1553–1558.
  8. H.A. Khwaja, S. Brudnoy, L. Husain, Chemical characterization of three summer cloud episodes at Whiteface Mountain, Chemosphere, 31 (1995) 3357–3381.
  9. S. Bikkina, K. Kawamura, Y. Miyazaki, P. Fu, High abundances of oxalic, azelaic, and glyoxylic acids and methylglyoxal in the open ocean with high biological activity: implication for secondary OA formation from isoprene, Geophys. Res. Lett., 41 (2014) 3649–3657.
  10. R. Sempéré, K. Kawamura, Trans-hemispheric contribution of C2–C10 α, ω-dicarboxylic acids, and related polar compounds to water-soluble organic carbon in the western Pacific aerosols in relation to photochemical oxidation reactions, Global Biogeochem. Cycles, 17 (2003) 1069, doi:10.1029/2002GB001980.
  11. Y. Kamaya, Y. Fukaya, K. Suzuki, Acute toxicity of benzoic acids to the crustacean Daphnia magna, Chemosphere, 59 (2005) 255–261.
  12. E.M. Thurman, Organic Geochemistry of Natural Waters, Zotero Program, 1985.
  13. I.P. Pozdnyakov, V.F. Plyusnin, V.P. Grivin, E. Oliveros, Photochemistry of Fe(III) complexes with salicylic acid derivatives in aqueous solutions, J. Photochem. Photobiol., A, 307–308 (2015) 9–15.
  14. H. Herrmann, B. Ervens, H.-W. Jacobi, R. Wolke, P. Nowacki, R. Zellner, CAPRAM2.3: a chemical aqueous phase radical mechanism for tropospheric chemistry, J. Atmos. Chem., 36 (2000) 231–284.
  15. M.R.A. Silva, A.G. Trovó, R.F.P. Nogueira, Degradation of the herbicide tebuthiuron using solar photo-Fenton process and ferric citrate complex at circumneutral pH, J. Photochem. Photobiol., A, 191 (2007) 187–192.
  16. K. Kuma, S. Nakabayashi, K. Matsunaga, Photoreduction of Fe(III) by hydroxycarboxylic acids in seawater, Water Res., 29 (1995) 1559–1569.
  17. T. Zhou, X. Lu, J. Wang, F.-S. Wong, Y. Li, Rapid decolorization and mineralization of simulated textile wastewater in a heterogeneous Fenton like system with/without external energy, J. Hazard. Mater., 165 (2009) 193–199.
  18. C.Y. Kwan, W. Chu, The role of organic ligands in ferrous-induced photochemical degradation of
    2,4-dichlorophenoxyacetic acid, Chemosphere, 67 (2007) 1601–1611.
  19. B.H.J. Bielski, D.E. Cabelli, R.L. Arudi, A.B. Ross, Reactivity of HO2/O2 radicals in aqueous solution, J. Phys. Chem. Ref. Data, 14 (1985) 1041–1100.
  20. N. Seraghni, I. Ghoul, I. Lemmize, A. Reguig, N. Debbache, T. Sehili, Use of oxalic acid as inducer in photocatalytic oxidation of Cresol red in aqueous solution under natural and artificial light, Environ. Technol., 39 (2018) 2908–2915.
  21. J. Guo, Y. Du, Y. Lan, J. Mao, Photodegradation mechanism and kinetics of methyl orange catalyzed by Fe(III) and citric acid, J. Hazard. Mater., 186 (2011) 2083–2088.
  22. X. Ou, Y. Su, F. Zhang, C. Wang, Y. Wu, Photooxidation of Orange G in Aqueous Solution Induced by Irradiation of Fe(III)-Citrate Complex, 2011 International Conference on Remote Sensing, Environment and Transportation Engineering, IEEE, Nanjing, China, 2011, pp. 3319–3322.
  23. X. Ou, X. Quan, S. Chen, F. Zhang, Y. Zhao, Photocatalytic reaction by Fe(III)–citrate complex and its effect on the photodegradation of atrazine in aqueous solution, J. Photochem. Photobiol., A, 197 (2008) 382–388.
  24. I. Ghoul, N. Debbache, B.A. Dekkiche, N. Seraghni, T. Sehili, Z. Marín, J.A. Santaballa, M.C. López, Fe(III)-citrate enhanced sunlight-driven photocatalysis of aqueous carbamazepine, J. Photochem. Photobiol., A, 378 (2019) 147–155.
  25. B.A. Dekkiche, N. Seraghni, N. Debbache, I. Ghoul, T. Sehili, Effect of natural and artificial light on Fe(III) organic complexes photolysis: case of Fe(III)-malonate and Fe(III)-malate, Int. J. Chem. Reactor Eng., 17 (2018), doi: 10.1515/ijcre-2018-0106.
  26. A. Safarzadeh-Amiri, J.R. Bolton, S.R. Cater, Ferrioxalatemediated photodegradation of organic pollutants in contaminated water, Water Res., 31 (1997) 787–798.
  27. F.J. Millero, S. Sotolongo, The oxidation of Fe(II) with H2O2 in seawater, Geochim. Cosmochim. Acta, 53 (1989) 1867–1873.
  28. B.C. Faust, R.G. Zepp, Photochemistry of aqueous iron(III)-polycarboxylate complexes: roles in the chemistry of atmospheric and surface waters, Environ. Sci. Technol., 27 (1993) 2517–2522.
  29. M. Fukushima, K. Tatsumi, Photocatalytic reaction by iron(III)-humate complex and its effect on the removal of organic pollutant, Toxicol. Environ. Chem., 73 (1999) 103–116.
  30. Y. Mameri, N. Debbache, M. El Mehdi Benacherine, N. Seraghni, T. Sehili, Heterogeneous photodegradation of paracetamol using goethite/H2O2 and goethite/oxalic acid systems under artificial and natural light,
    J. Photochem. Photobiol., A, 315 (2016) 129–137.
  31. M. El Mehdi Benacherine, N. Debbache, I. Ghoul, Y. Mameri, Heterogeneous photoinduced degradation of amoxicillin by goethite under artificial and natural irradiation, J. Photochem. Photobiol., A, 335 (2017) 70–77.
  32. A. Durán, J.M. Monteagudo, A.J. Expósito, V. Monsalve, Modeling the sonophoto-degradation/mineralization of carbamazepine in aqueous solution, Chem. Eng. J., 284 (2016) 503–512.
  33. A. Ghauch, H. Baydoun, P. Dermesropian, Degradation of aqueous carbamazepine in ultrasonic/Fe0/H2O2 systems, Chem. Eng. J., 172 (2011) 18–27.
  34. J.-K. Im, H.-S. Son, Y.-M. Kang, K.-D. Zoh, Carbamazepine degradation by photolysis and titanium dioxide photocatalysis, Water Environ. Res., 84 (2012) 554–561.
  35. J. Deng, Y. Shao, N.-Y. Gao, Y. Deng, S. Zhou, X. Hu, Thermally activated persulfate (TAP) oxidation of antiepileptic drug carbamazepine in water, Chem. Eng. J., 228 (2013) 765–771.
  36. G. Eisenberg, Colorimetric determination of hydrogen peroxide, Ind. Eng. Chem. Anal. Ed., 15 (1943) 327–328.
  37. R.H. Schuler, G. Albarran, The rate constants for reaction of OH radicals with benzene and toluene, Radiat. Phys. Chem., 64 (2002) 189–195.
  38. J. Guo, J. Zhang, C. Chen, Y. Lan, Rapid photodegradation of methyl orange by oxalic acid assisted with cathode material of lithium ion batteries LiFePO4, J. Taiwan Inst. Chem. Eng., 62 (2016) 187–191.
  39. E.M. Rodríguez, B. Núñez, G. Fernández, F.J. Beltrán, Effects of some carboxylic acids on the Fe(III)/UVA photocatalytic oxidation of muconic acid in water, Appl. Catal., B, 89 (2009) 214–222.
  40. E.M. Rodríguez, G. Fernández, N. Klamerth, M.I. Maldonado, P.M. Álvarez, S. Malato, Efficiency of different solar advanced oxidation processes on the oxidation of bisphenol A in water, Appl. Catal., B, 95 (2010) 228–237.