Zitieren

[1]. S. Akinnawo, K. Kolawole, E. Olanipekun, Spatial distribution and speciation of heavy metals in sediment of river Ilaje, Nigeria, International Research Journal of Pure and Applied Chemistry 10 (2016) 1-10. DOI: 10.9734/IRJPAC/2016/22031 Open DOISearch in Google Scholar

[2]. S. Akinnawo, C. Abiola, E. Olanipekun, Seasonal variation in the physico-chemical and microbial characterization of sediment and water samples from selected areas in Ondo coastal region, Nigeria, Journal of Geography, Environment and Earth Science International 5 (2016) 1-12. DOI: 10.9734/JGEESI/2016/22413 Open DOISearch in Google Scholar

[3]. Y.A. Adeshina, S. Akinnawo, F.A. Aiyesanmi, Contamination levels of organochlorine and organophosphorous pesticide residues in water and sediment from River Owena, Nigeria, Current Journal of Applied Science and Technology 34 (2019) 1-11. DOI: 10.9734/CJAST/2019/v34i230119 Open DOISearch in Google Scholar

[4]. R. Kolawole, S. Akinnawo, A. Aiyesanmi, Chemical speciation and fractionation study of heavy metals in top sediment deposit of River Owena, Nigeria, Physical Science International Journal 21 (2019) 1-13. DOI: 10.9734/PSIJ/2019/v21i430113 Open DOISearch in Google Scholar

[5]. S. Akinnawo, Concentration of organophosphorous pesticide residues in water and sediment samples from River Ilaje, Nigeria, American Chemical Science Journal 11 (2016) 1-9. DOI: 10.9734/ACSJ/2016/22077 Open DOISearch in Google Scholar

[6]. S.O. Akinnawo, Evaluation study on the sequential extraction and eco-toxicogical profile of heavy metals in sediment along the coastline of Nigeria, Communications Faculty Science University of Ankara. Series. B Chemistry and Chemical Engineering 63 (2021) 1-26. https://dergipark.org.tr/en/pub/communb/issue/64811/904608 Search in Google Scholar

[7]. K.A. Adegoke, S.O. Akinnawo, O.A. Ajala, T.A. Adebusuyi, N.W. Maxakato, O.S. Bello, Progress and challenges in batch and optimization studies on the adsorptive removal of heavy metals using modified biomass-based adsorbents, Bioresource Technology Reports 19 (2022) 101115. DOI: 10.1016/j.biteb.2022.101115 Open DOISearch in Google Scholar

[8]. M.P. Ajisafe, O.O. Ajayi, E.O. Abata, S. Akinnawo, M.T. Oluwalope, Chemical fractionation of heavy metals in the soil of automechanic workshops in Akure, Ondo State, Nigeria, Chemical Science International Journal 21 (2017) 1-16. DOI: 10.9734/CSJI/2017/38088 Open DOISearch in Google Scholar

[9]. S. Akinnawo, The emergence of nanotechnology and its applications, Research Journal of Nanoscience and Engineering 2 (2018) 8-12. Search in Google Scholar

[10]. S. Akinnawo, Synthesis, modification, applications and challenges of titanium dioxide nanoparticles, Research Journal of Nanoscience and Engineering 3 (2019) 10-22. Search in Google Scholar

[11]. M.P. Ajisafe, S. Akinnawo, Isolation and antibacterial activity of the active components from the stem-back of Enantial chlorantha, European Journal of Medicinal Plants 22 (2018) 1-7. DOI: 10.9734/EJMP/2018/38174 Open DOISearch in Google Scholar

[12]. S.O. Akinnawo, The application of biotechnology in the synthesis of metal/metal oxides nanoparticles: review, Bulletin of Scientific Research 1 (2019) 1-9. DOI: 10.34256/bsr1911 Open DOISearch in Google Scholar

[13]. S.O. Akinnawo, Chemical precipitation and reduction methods for the restoration of water from aquaculture operation, Coast, Journal of School of Science 3 (2021) 517-533 Search in Google Scholar

[14]. K.A. Adegoke, S.O. Akinnawo, O.S. Bello, N.W. Maxakato, R.O. Adegoke, in: R.K. Gupta, T. Nguyen, G. Yasin (Eds.), Metal-Organic framework-based nanomaterials for energy conversion and storage, Micro and Nano Technology Series, Elsevier, 2022, pp. 107-125. DOI: 10.1016/B978-0-323-91179-5.00006-1 Open DOISearch in Google Scholar

[15]. J. Jiang, N.J.D. Graham, Pre-polymerised inorganic coagulants and phosphorus removal by coagulation - a review, Water SA 3 (1998) 237-244. Search in Google Scholar

[16]. O.S. Amuda, I.A. Amoo, K.O. Ipinmoroti, O.O. Ajayi, Coagulation/flocculation process in the removal of trace metals present in industrial wastewater, Journal of Applied Science and Environmental Management 10 (2006) 159-162. Search in Google Scholar

[17]. R.B. Moruzzi, M.A.P. Reali, L.J. Patrizzi, Enhanced organic iron compounds removal by using DAF, 2nd IWA Leading-Edge Conference on Water and Wastewater Technologies Prague (2004) 1-8 Search in Google Scholar

[18]. I. Krupińska, The influence of aeration and type of coagulants on effectiveness in removing pollutants from groundwater in the process of coagulation, Chemical Biochemical Engineering Quarterly 30 (2016) 465–475. DOI: 10.15255/CABEQ.2014.2016 Open DOISearch in Google Scholar

[19]. M. Donmez, F. Akba, The removal of As (V) from drinking waters by coagulation process using iron salts, International Journal of Environmental and Ecological Engineering 6 (2011) 340-342. Search in Google Scholar

[20]. B. Ghosh, A.K. Gangopadhyah, M.C. Das, T.B. Das, K. Singh, S. Lal, S. Miltra, Removal of arsenic from water by coagulation treatment using iron and magnesium salt, Indian Journal of Chemical Technology 10 (2003) 87-95. Search in Google Scholar

[21]. K.A. Parmar, S. Prajapati, P. Rinku, D. Yogesh, Effective use of ferrous sulphate and aluminum sulfate as a coagulant in treatment of dairy industry wastewater, ARPN Journal of Engineering and Applied Sciences 6 (2011) 42-45. Search in Google Scholar

[22]. A.A. Aghapour, S. Nemati, A. Mohammadi, H. Nourmoradi, S. Karimzadeh, Nitrate removal from water using aluminum sulfate and ferric chloride: a comparative study of aluminum sulfate and ferric chloride efficiency, Environmental Health Engineering and Management Journal 3 (2016) 69–73. DOI: 10.15171/ehemj.2016.03 Open DOISearch in Google Scholar

[23]. M. Rafiee, A. Mesdaghinia, A. Mahvi, Residual metal concentrations in enhanced coagulation with ferric chloride and aluminum sulfate for TOC removal, European Scientific Journal 2 (2014) 25-41. Search in Google Scholar

[24]. I. Krupinska, The impact of potassium manganate (VII) on the effectiveness of coagulation in the removal of iron and manganese from groundwater with an increased content of organic substances, Civil and Environmental Engineering Reports 27 (2007) 029-041. DOI: 10.1515/ceer-2017-0048 Open DOISearch in Google Scholar

[25]. N. Kumar, N. Balasundaram, Efficiency of PAC in water treatment plant and disposal of its sludge, International Journal of Applied Engineering Research 12 (2017) 3253-3262 Search in Google Scholar

[26]. P. Kumar, T.T. Tow, S. Chand, K.L. Wastewater, Treatment of paper and pulp mill effluent by coagulation, International Journal of Chemical and Molecular Engineering 5 (2011) 715-720. Search in Google Scholar

[27]. A. Zouboulis, V. Fotini, M. Panagiotis, Synthesis, characterization and application in coagulation experiments of poly ferric sulphate, WIT Transactions on Ecology and the Environment 92 (2006) 133-142. DOI: 10.2495/WM060151 Open DOISearch in Google Scholar

[28]. Z. Guang-Wen, L. Yang, Z. Pu-Xuan, S. Mo-Jie, Study progress in the preparation coagulant by industrial waste, Proceedings on 3rd the International Conference on Advances in Energy and Environmental Science (2015) 607-613. DOI: 10.2991/icaees-15.2015.112 Open DOISearch in Google Scholar

[29]. D. Akgul, T. Abbott, C. Eskicioglu, Assessing iron and aluminum-based coagulants for odour and pathogen reductions in sludge digesters and enhanced digestate dewaterability, Science of the Total Environment 598 (2017) 881-888. DOI: 10.1016/j.scitotenv.2017.04.141 Open DOISearch in Google Scholar

[30]. I. Krupinska, Aluminum drinking water residuals and their toxic impact on human health, Molecules 25 (2020) 641. DOI: 10.3390/molecules25030641 Open DOISearch in Google Scholar

[31]. R. Meszaros, S. Barany, Purification of wastewaters containing endocrine disrupting compounds by coagulation, Materials Science and Engineering 38 (2013) 29-39. Search in Google Scholar

[32]. I.A. Katsoyiannis, N.M. Tzollas, A.K. Tolkou, M. Mitrakas, M. Ernst, A.I. Zouboulis, Use of novel composite coagulants for arsenic removal from waters experimental insight for the application of polyferric sulfate (PFS), Sustainability 9 (2017) 590. DOI: 10.3390/su9040590 Open DOISearch in Google Scholar

[33]. K. Pavel, K. Nikolay, F. Oleg, Matrix-isolated nanocomposites alumina-silicon and iron-silicon flocculants-coagulants, Journal of Physical Science and Application 2 (2017) 36-41. DOI: 10.17265/2159-5348/2017.02.006 Open DOISearch in Google Scholar

[34]. D. Yonge, A comparison of aluminum sulfate inum and iron-based coagulants for treatment of surface water in Sarasota County, Florida, (2012) Masters’ Theses and Dissertation, University of Central Florida. http://purl.fcla.edu/fcla/etd/CFE0004621 Search in Google Scholar

[35]. S. Hussain, J. van Leeuwen, C.W.K. Chow, R. Aryal, S. Beecham, J. Duan, M. Drikas, Comparison of the coagulation performance of tetravalent titanium and zirconium salts with aluminum sulfate, Chemical Engineering Journal 254 (2014) 635-646. DOI: 10.1016/j.cej.2014.06.014 Open DOISearch in Google Scholar

[36]. N.A. Oladoja, Headway on natural polymeric coagulants in water and wastewater treatment operations, Journal of Water Process Engineering 6 (2015) 174–192. DOI: 10.1016/j.jwpe.2015.04.004 Open DOISearch in Google Scholar

[37]. R.A. Cinco, J.B. Mana-ay, K.A. Obillo, M.N.D. Medina, E.P. Leaño, Efficiency of chitosan (Poly- [D] Glucosamine) as natural organic coagulant in pre-treatment of active carbon effluent in Panacan, Davao City, University of Mindanao International Multidisciplinary Research Journal 1 (2016) 149-157. Search in Google Scholar

[38]. L. Kos, K. Michalska, R. Żyłła, Removal of pollutants from textile wastewater using organic coagulants, Fibres and Textiles in Eastern Europe 6 (2016) 218-224. DOI: 10.5604/12303666.1221755 Open DOISearch in Google Scholar

[39]. N.A. Oladoja, R.O.A. Adelagunb, A.L. Ahmadc, I.A. Ololade, Phosphorus recovery from aquaculture wastewater using thermally treated gastropod shell, Process Safety and Environmental Protection 98 (2015) 296-308. DOI: 10.1016/j.psep.2015.09.006 Open DOISearch in Google Scholar

[40]. N.A. Oladoja, A.O. Adesina, R.O.A. Adelagun, Gastropod shell column reactor as on-site system for phosphate capture and recovery from aqua system, Ecological Engineering 69 (2014) 83-92. DOI: 10.1016/j.ecoleng.2014.03.077 Open DOISearch in Google Scholar

[41]. N.A. Oladoja, Advances in the quest for substitute for synthetic organic polyelectrolytes as a coagulant aid in water and wastewater treatment operations, Sustainable Chemistry and Pharmacy 3 (2016) 47–58. DOI: 10.1016/j.scp.2016.04.001 Open DOISearch in Google Scholar

[42]. V.S. Ashtekar, V.M. Bhandari, S.R. Shissth, P.L. Sai, P.D. Jolhe, S.A. Ghodke, Dye wastewater treatment: removal of reactive dyes using inorganic and organic coagulant, Journal of Industrial Pollution Control 30 (2014) 33-42. Search in Google Scholar

[43]. W. Xu, Q. Yue, B. Gao, B. Du, Impacts of organic coagulant aid on purification performance and membrane fouling of coagulation/ultrafiltration hybrid process with different Al-based coagulants, Desalination 363 (2015) 126-133. DOI: 10.1016/j.desal.2014.11.003 Open DOISearch in Google Scholar

[44]. F.B. García, JM. Arnal, M.P. Fernández, Alternatives to the use of synthetic organic coagulant aids in drinking water treatment: improvements in the application of the crude extract of Moringa Oleifera seed, Desalination and Water Treatment 55 (2015) 3635-3645. DOI: 10.1080/19443994.2014.939487 Open DOISearch in Google Scholar

[45]. I.A. Obiora-Okafo, O.D. Onukwuli, Optimization of coagulation-flocculation process for colour removal from azo dye using natural polymers: response surface methodological approach, Nigerian Journal of Technology 36 (2017) 482 – 495. DOI: 10.4314/njt.v36i2.23 Open DOISearch in Google Scholar

[46]. L. Fermino, A. Pedrangelo, P. Silva, R. Azevedo, N. Yamaguchi, R.M. Ribeiro, Water treatment with conventional and alternative coagulants, Chemical Engineering Transactions 57 (2017) 1189-1194. DOI: 10.3303/CET1757199 Open DOISearch in Google Scholar

[47]. N.A. Oladoja, G. Pan, Modification of local soil/sand with Moringa oleifera extracts for effective removal of cyano bacterial blooms, Sustainable Chemistry and Pharmacy 2 (2015) 37–43. DOI: 10.1016/j.scp.2015.08.003 Open DOISearch in Google Scholar

[48]. G. Vijayaraghavan, T. Sivakumar, A.V. Kumar, Application of plant based coagulants for wastewater treatment, International Journal of Advanced Engineering Research and Studies 1 (2011) 88-92. Search in Google Scholar

[49]. S.S. Thakur, S. Choubey, Use of tannin based natural coagulants for water treatment: an alternative to inorganic chemicals, International Journal of ChemTech Research 6 (2014) 3628-3634. Search in Google Scholar

[50]. Y. Demirci, L.C. Pekel, M. Alpbaz., Investigation of different electrode connections in electrocoagulation of textile wastewater treatment, International Journal of Electrochemical Science 10 (2015) 2685-2693. Search in Google Scholar

[51]. E. Bazrafshan, Performance evaluation of electrocoagulation process for removal of chromium (VI) from synthetic chromium solutions using iron and aluminum sulfate inum electrodes, Turkish journal of Engineering and Environmental Science 32 (2008) 59–66. Search in Google Scholar

[52]. C. Phalakornkule, S. Polgumhang, W. Tongdaung, Performance of an electrocoagulation process in treating direct dye: batch and continuous up flow processes, International Scholarly and Scientific Research and Innovation 3 (2009) 494-499. DOI: 10.5281/zenodo.1080179 Open DOISearch in Google Scholar

[53]. I. Chakchouk, N. Elloumi, C. Belaid, S. Mseddi, L. Chaari, M. Kallel, A combined electrocoagulationelectrooxidation treatment for dairy wastewater, Brazilian Journal of Chemical Engineering 34 (2017) 109-117. DOI: 10.1590/0104-6632.20170341s20150040 Open DOISearch in Google Scholar

[54]. E. Butler, Y. Hung, R.Y. Yeh, M.S. Al Ahmad, Electrocoagulation in wastewater treatment, Water 3 (2011) 495-525. DOI: 10.3390/w3020495 Open DOISearch in Google Scholar

[55]. M. Malakootian, N. Yousefi, The efficiency of electrocoagulation process using aluminum sulfate inum electrodes in removal of hardness from water, Iranian Journal of Environmental Health Science and Engineering 6 (2009) 131-136. Search in Google Scholar

[56]. L. Smoczynski, K.T. Munska, M. Kosobucka, B. Pierozynski, Phosphorus and COD removal from chemically and electrochemically coagulated wastewater, Environment Protection Engineering 40 (2014) 64-73. DOI: 10.5277/epe140305 Open DOISearch in Google Scholar

[57]. T. Öztürk, S. Veli, A. Dimoglo, The effect of seawater conductivity on the treatment of leachate by electrocoagulation, Chemical Biochemical Engineering Quarterly 27 (2013) 347–354. Search in Google Scholar

[58]. F. Zidane, N. Kaba, J. Bensaid, A. Rhazzar, S. El basri, J. Blais, P. Drogui, Treatment the effluents by adsorption-coagulation with compounds of iron and aluminum prepared by indirect electrocoagulation, Journal of Materials and Environmental Science 5 (2014) 803-810. Search in Google Scholar

[59]. S. Tchamango, O. Kamdoum, D. Donfack, D. Babale, E. Ngameni, Comparison of electrocoagulation and chemical coagulation in the treatment of artisanal tannery effluents, Nigerian Journal of Technology 35 (2016) 219 – 225. DOI: 10.4314/njt.351.1066 Open DOISearch in Google Scholar

[60]. H. Ahmad, W.K. Lafi, K. Abushgair, J.M. Assbeihat, Comparison of coagulation, electrocoagulation and biological techniques for the municipal wastewater treatment, International Journal of Applied Engineering Research 11 (2016) 11014-11024. Search in Google Scholar

[61]. J. Huijun, Y. Qiuyan, Removal of nitrogen from wastewater using microalgae and microalgae– bacteria consortia, Cognate Environmental Science 2 (2016) 23-34. DOI: 10.1080/23311843.2016.1275089 Open DOISearch in Google Scholar

[62]. M. Zielinski, J. Kazimierowicz, M. Debwski, Advantages and limitations of anaerobic wastewater treatment-technology basics, development directions, and technological innovations, Energies 16 (2023) 1-39. Search in Google Scholar

[63]. H. Ahmad, A quantitative comparison between chemical coagulation and biological treatment of municipal wastewater, International Journal of Applied Engineering Research 1 (2016) 9424-9429. Search in Google Scholar

[64]. S.O. Akinnawo, Physicochemical and microbial analyses of surface water and sediment samples from two Ilaje communities in Ondo State, Nigeria, The Federal University of Technology, Akure, Master’s Thesis 2016. http://196.220.128.81:8080/xmlui/handle/123456789/1870 Search in Google Scholar

eISSN:
2286-038X
Sprache:
Englisch
Zeitrahmen der Veröffentlichung:
2 Hefte pro Jahr
Fachgebiete der Zeitschrift:
Chemie, andere