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Articles

Hierarchical porous mussel shells as soil amendment for oil spill remediation

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Pages 3189-3197 | Received 21 Oct 2020, Accepted 10 Apr 2021, Published online: 04 May 2021

References

  • Silvani L, Vrchotova B, Kastanek P, et al. Characterizing biochar as alternative sorbent for oil spill remediation. Sci Rep. 2017;7:43912.
  • El-Sheshtawy H, Khalil N, Ahmed W, et al. Monitoring of oil pollution at Gemsa Bay and bioremediation capacity of bacterial isolates with biosurfactants and nanoparticles. Mar Pollut Bull. 2014;87:191–200.
  • Gao Y, Wang J, Guo S, et al. Effects of salinizeation and crude oil contamination on soil bacterial community structure in the Yellow River Delta region, China. Appl Soil Ecol. 2015;86:165–173.
  • Hentati O, Lachhab R, Ayadi M, et al. Toxicity assessment for petroleum contaminated soil using terrestrial invertebrates and plant bioassays. Environ Monit Assess. 2013;185:2989–2998.
  • Kanarbik L, Blinova I, Sihtmäe M, et al. Environmental effects of soil contamination by shale fuel oils. Environ Sci Pollut Res. 2014;21:11320–11330.
  • Banat IM. Biosurfactants production and possible uses in microbial enhanced oil recovery and oil pollution remediation: a review. Bioresour Technol. 1995;51:1–12.
  • Das S, Kuppanan N, Channashettar VA, et al. Remediation of oily sludge- and oil-contaminated soil from petroleum industry: recent developments and future prospects. In: Adhya T, Lal B, Mohapatra B, Paul D, Das S, editors. Advances in soil microbiology: recent trends and future prospects. microorganisms for sustainability, vol 3. Singapore: Springer; 2018. p. 165–177.
  • Silva D, de Lima Cavalcanti D, de Melo EJV, et al. Bio-removal of diesel oil through a microbial consortium isolated from a polluted environment. Int Biodeterior Biodegrad. 2015;97:85–89.
  • Silva A, Delerue-Matos C, Fiuza A. Use of solvent extraction to remediate soils contaminated with hydrocarbons. J Hazard Mater. 2005;124:224–229.
  • Qin G, Gong D, Fan M-Y. Bioremediation of petroleum-contaminated soil by biostimulation amended with biochar. Int Biodeterior Biodegrad. 2013;85:150–155.
  • Lim M, Lau E, Poh P, et al. Interaction studies between high-density oil and sand particles in the oil flotation technology. J Pet Sci Eng. 2015;131:114–121.
  • Hu G, Li J, Thring RW, et al. Ultrasonic oil recovery and salt removal from refinery tank bottom sludge. J Environ Sci Health A. 2014;49:1425–1435.
  • Lim MW, Von Lau E, Poh PE. A comprehensive guide of remediation technologies for oil contaminated soil-present works and future directions. Mar Pollut Bull. 2016;109:14–45.
  • Carmody O, Frost R, Xi Y, et al. Adsorption of hydrocarbons on organo-clays-implications for oil spill remediation. J Colloid Interface Sci. 2007;305:17–24.
  • Wei D, Zhang H, Cai L, et al. Calcined mussel shell powder (CMSP) via modification with surfactants: application for antistatic oil-removal. Materials (Basel). 2018;11:1410.
  • Mo KH, Alengaram UJ, Jumaat MZ, et al. Recycling of seashell waste in concrete: A review. Const Bldg Mater. 2018;162:751–764.
  • Jiang D, Cai L, Ji L, et al. Nano-Bi2MoO6/calcined mussel shell composites with enhanced photocatalytic performance under visible-light irradiation. Micro Nano Lett. 2018;13:1021–1025.
  • Paradelo R, Conde-Cid M, Cutillas-Barreiro L, et al. Phosphorus removal from wastewater using mussel shell: investigation on retention mechanisms. Ecol Eng. 2016;97:558–566.
  • Peinemann JC, Krenz LMM, Pleissner D. Is seashell powder suitable for phosphate recovery from fermentation broth? New Biotechnol. 2019;49:43–47.
  • Garrido-Rodríguez B, Fernández-Calviño D, Munoz JN, et al. pH-dependent copper release in acid soils treated with crushed mussel shell. Int J Environ Sci Technol. 2013;10:983–994.
  • Osorio-López C, Seco-Reigosa N, Garrido-Rodríguez B, et al. As (V) adsorption on forest and vineyard soils and pyritic material with or without mussel shell: kinetics and fractionation. J Taiwan Inst Chem Eng. 2014;45:1007–1014.
  • Otero M, Cutillas-Barreiro L, Nóvoa-Muñoz JC, et al. Cr (VI) sorption/desorption on untreated and mussel-shell-treated soil materials: fractionation and effects of pH and chromium concentration. Solid Earth. 2015;6:373–382.
  • Boyd SA, Sun S. Residual petroleum and polychlorobiphenyl oils as sorptive phases for organic contaminants in soils. Environ Sci Technol. 1990;24:142–144.
  • Sing KSW. Reporting physisorption data for gas/solid systems with special reference to the determination of surface area and porosity (Recommendations 1984). Pure Appl Chem. 1985;57:603–619.
  • Yao X, Ji L, Guo J, et al. Magnetic activated biochar nanocomposites derived from wakame and its application in methylene blue adsorption. Bioresour Technol. 2020;02:112–142.
  • Kruk M, Jaroniec M. Gas adsorption characterization of ordered organic inorganic nanocomposite materials. Chem Mater. 2001;13:3169–3183.
  • Chen B, Yang Z, Ma G, et al. Heteroatom-doped porous carbons with enhanced carbon dioxide uptake and excellent methylene blue adsorption capacities. Micropor Mesopor Mater. 2018;257:1–8.
  • Aguayo-Villarreal IA, Bonilla-Petriciolet A, Muñiz-Valencia R. Preparation of activated carbons from pecan nutshell and their application in the antagonistic adsorption of heavy metal ions. J Mol Liq. 2017;230:686–695.
  • Kumar A, Jena HM. High surface area microporous activated carbons prepared from Fox nut (Euryale ferox) shell by zinc chloride activation. Appl Surf Sci. 2015;356:753–761.
  • Jian X, Zhuang X, Li B, et al. Comparison of characterization and adsorption of biochars produced from hydrothermal carbonization and pyrolysis. Environ Technol Inno. 2018;10:27–35.
  • Ji L, Song W, Wei D, et al. Modified mussel shell powder for microalgae immobilization to remove N and P from eutrophic wastewater. Bioresour Technol. 2019;284:36–42.
  • Qi C, Zhu Y, Chen F. Microwave hydrothermal transformation of amorphous calcium carbonate nanospheres and application in protein adsorption. ACS Appl Mater Interfaces. 2014;6:4310–4320.
  • Lauth V, Maas M, Rezwan K. An evaluation of colloidal and crystalline properties of CaCO3 nanoparticles for biological applications. Mater Sci Eng C. 2017;78:305–314.
  • Zhu Y. Nanostructured materials of calcium phosphates and calcium silicates: synthesis, properties and applications. Chin J Chem. 2017;35:769–790.
  • Yang X, Zhang S, Liu L, et al. Study on the long-term effects of DOM on the adsorption of bps by biochar. Chemosphere. 2019;242:125–165.
  • Cai L, Zhang Y, Zhou Y, et al. Effective adsorption of diesel oil by crab-shell-derived biochar nanomaterials. Materials. 2019;12:236.
  • Xu C, Jiao C, Yao R, et al. Adsorption and regeneration of expanded graphite modified by CTAB-KBr/H3PO4 for marine oil pollution. Environ Pollut. 2018;233:194–200.
  • Bai L, Li Z, Zhang Y, et al. Synthesis of water-dispersible graphene-modified magnetic polypyrrole nanocomposite and its ability to efficiently adsorb methylene blue from aqueous solution. Chem Eng J. 2015;279:757–766.
  • El Haddad M, Abdelmajid R, My RL, et al. Calcined mussel shells as a new and eco-friendly biosorbent to remove textile dyes from aqueous solutions. J Taiwan Inst Chem Eng. 2014;45:533–540.
  • Ojewumi ME, Okeniyi JO, Ikotun JO, et al. Bioremediation: data on pseudomonas aeruginosa effects on the bioremediation of crude oil polluted soil. Data Brief. 2018;19:101–113.
  • Robson DB, Germida JJ, Farrell RE, et al. Hydrocarbon tolerance correlates with seed mass and relative growth rate. Bioremediat J. 2004;8:185–199.

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