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Research Article

Effects of soil texture on trace metal concentrations and geochemical fractions in the soil of apple orchards (Çanakkale, NW Turkey)

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Pages 2677-2691 | Received 24 May 2022, Accepted 17 Jan 2023, Published online: 26 Jan 2023

References

  • Alloway BJ. 1995. Soil processes and behavior of heavy metals. In: Alloway BJ, editor. Heavy metals in soils. NY: Blackie Academic and Professional Publication; p. 368.
  • Boente C, Millán-Martínez M, de la Campa AMS, Sánchez-Rodas D, Jesús D. 2022. Physicochemical assessment of atmospheric particulate matter emissions during open-pit mining operations in a massive sulphide ore exploitation. Atmos Pollut Res. 13(4):101391.
  • Botsou F, Sungur A, Kelepertzis E, Soylak M. 2016. Insights into the chemical partitioning of trace metals in roadside and off-road agricultural soils along two major highways in Attica’s region, Greece. Ecotoxicol Environ Saf. 132:101–110. doi:10.1016/j.ecoenv.2016.05.032.
  • Bradl HB. 2004. Adsorption of heavy metal ions on soils and soils constituents. J Colloid Interface Sci. 277(1):1–18.
  • Brunetto G, Paa F, Melo GW, Ceretta CA, Toselli M. 2017. Heavy metals in vineyards and orchard soils. Rev Bras Frutic. 39(2):e–263.
  • Cabral AR, Lefebvre G. 1998. Use of sequential extraction in the study of heavy metal retention by silty soils. Wat Air Soil Poll. 102(3):329–344.
  • Cao C, Zhang Q, Ma ZB, Wang XM, Chen H, Wang JJ. 2018. Fractionation and mobility risks of heavy metals and metalloids in wastewater-irrigated agricultural soils from greenhouses and fields in Gansu, China. Geoderma. 328:1–9.
  • Chen L, Wang KP, Yang JY. 2020. Evaluate the potential bioavailability of vanadium in soil and vanadium titano-magnetite tailing in a mining area using BCR sequential and single extraction: a case study in Panzhihua, China. Soil Sediment Contam. 29(2):232–245.
  • Chuai X, Xiao R, Chang L, Wang J, Yong H, Jiang R, Zhang T, Tan S, Zhao Y, Xiong Z, et al. 2022. Fate and emission behavior of heavy metals during hazardous chemical waste incineration. J Hazard Mater. 431:128656.
  • Demir A. 2021. Speciation, risk assessment and bioavailability of metals in the agricultural soils of the Göksu Delta, Turkey. Soil Sediment Contam. 30(3):292–313.
  • Demirak A, Kocakaya M, Keskin F. 2022. Chemical fractions of toxic metals and assessment of risks on the environment and health in Mugla topsoils. Int J Environ Sci Technol. 19:5631–5648.
  • Devi P, Saroha AK. 2014. Risk analysis of pyrolyzed biochar made from paper mill effluent treatment plant sludge for bioavailability and eco-toxicity of heavy metals. Bioresource Technol. 162:308–315.
  • Dube A, Zbytniewski R, Kowalkowski T, Cukrowska E, Buszewski B. 2001. Adsorption and migration of heavy metals in soil. Pol J Environ Stud. 10(1):1–10.
  • Everest T, Sungur A, Özcan H. 2021. Determination of agricultural land suitability with a multiple-criteria decision-making method in Northwestern Turkey. Int J Sci Environ. 18(5):1073–1088.
  • FAO. 2006. Guidelines for soil description. 4th. Rome: FAO.
  • Gee GW, Or D. 2002. Particle-size analysisParticle-size analysis. Dane J, and Topp G Madison WI: Soil Science Society of America. p. 255–293.
  • Gur E, Sungur A. 2018. Estimation of heavy metal fractions, sources and uptake by plants in cherry orchards (Canakkale-Lapseki, Northwestern Turkey). Fresenius Environ Bull. 27(9):6379–6387.
  • Huang B, Yuan Z, Li D, Zheng M, Nie X, Liao Y. 2020. Effects of soil particle size on the adsorption, distribution, and migration behaviors of heavy metal (loid) s in soil: a review. Environ Sci Process Impacts. 22(8):1596–1615.
  • Jain CK. 2004. Metal fractionation study on bed sediments of River Yamuna India. Water Res. 38(3):569–578.
  • Kabata-Pendias A. 2011. Trace elements in soils and plants. Boca RAton (London, New York): CRC Press.
  • Kowalska JB, Mazurek R, Gąsiorek M, Zaleski T. 2018. Pollution indices as useful tools for the comprehensive evaluation of the degree of soil contamination–A review. Environ Geochem Health. 40(6):2395–2420.
  • Lashari AA, Kazi TG, Baig JA, Afridi HI. 2020. Fractionation of lead in lignite coal samples of Thar coalfield, Pakistan by time‐saving single‐step based on BCR sequential extraction scheme. Environ Prog Sustain Energy. 39(6):e13439.
  • Liu Y, Cui J, Peng Y, Lu Y, Yao D, Yang J, He Y. 2020. Atmospheric deposition of hazardous elements and its accumulation in both soil and grain of winter wheat in a lead-zinc smelter contaminated area, Central China. Sci Total Environ. 707:135789.
  • Logan TJ, Chaney RL. 1983. Utilization of municipal wastewater and sludge on land-metals. In Proceedings of the Workshop on Utilization of Municipal Wastewater and Sludge on Land. University of California, Riverside, CA, p. 235–323.
  • Ma C, Xie P, Yang J, Liu F, Hu H, Du J, Zhang K, Lin L, Zhang H. 2022. Relative contribution of environmental medium and internal organs to lead accumulation of wheat grain. Sci Total Environ. 818:151832.
  • Minitab LLC (2018). Minitab. [accessed 2018 Oct 16]. https://www.minitab.com
  • Mouni L, Belkhiri L, Bouzaza A, Bollinger JC. 2017. Interactions between Cd, Cu, Pb, and Zn and four different mine soils. Arab J Geosci. 10(4):1–9.
  • Nelson RE. 1982. Carbonate and gypsum. In: In: Page AL, Miller RH, Keeney DR, editors. Methods of soil analysis, part 2: chemical and microbiological properties. 2nd ed. Madison: ASA SSSA; p. 181–197.
  • Nelson DW, Sommers LE. 1982. Total carbon, organic carbon, and organic matterTotal carbon, organic carbon, and organic matter. 2nd. Page A, Miller R, and Keeney D, editors. Madison: ASA, SSSA. p. 539–579.
  • Qian JIN, Shan XQ, Wang ZJ, Tu Q. 1996. Distribution and plant availability of heavy metals in different particle-size fractions of soil. Sci Total Environ. 187(2):131–141.
  • Qin C, Xu X, Peck E. 2022. Sink or source? Insights into the behavior of copper and zinc in the sediment pore water of a constructed wetland by peepers. Sci Total Environ. 821:153127.
  • Rauret G. 1998. Extraction procedures for the determination of heavy metals in contaminated soil and sediment. Talanta. 46(3):449–455.
  • Rauret G, Lopez-Sanchez JF, Sahuquillo A, Rubio R, Davidson C, Ure A, Quevauviller P. 1999. Improvement of the BCR three step sequential extraction procedure prior to the certification of new sediment and soil reference materials. J Environ Monit. 1(1):57–61.
  • Rieuwerts JS, Thornton I, Farago ME, Ashmore MR. 1998. Factors influencing metal bioavailability in soils: preliminary investigations for the development of a critical loads approach for metals. Chem Speciat Bioavailab. 10(2):61–75.
  • Sakan S, Frančišković-Bilinski S, Đorđević D, Popović A, Škrivanj S, Bilinski H. 2020. Geochemical fractionation and risk assessment of potentially toxic elements in sediments from Kupa River, Croatia. Water. 12(7):2024.
  • Saleem M, Iqbal J, Shah MH. 2015. Geochemical speciation, anthropogenic contamination, risk assessment and source identification of selected metals in freshwater sediments—a case study from Mangla Lake, Pakistan. Environ. Nanotechnol. Monit Manag 4:27–36.
  • Semenkov IN, Konyushkova MV. 2022. Geochemical partition of chemical elements in Kastanozems and Solonetz in a local catchment within a semiarid landscape of SW Russia. Catena. 210:105869.
  • Shao S, Hu B, Tao Y, You Q, Huang M, Zhou L, Chen Q, Shi Z. 2022. Comprehensive source identification and apportionment analysis of five heavy metals in soils in Wenzhou City, China. Environ Geochem Health. 44(2):579–602.
  • Soil Survey Division Staff. 1993. Soil Survey Manual, Soil Conservation Service. Washington (DC):U.S. Department of Agriculture Handbook 18.
  • Sonoda K, Hashimoto Y, Wang SL, Ban T. 2019. Copper and zinc in vineyard and orchard soils at millimeter vertical resolution. Sci Total Environ. 689:958–962.
  • Sungur A, Gur E, Everest T, Soylak M, Ozcan H. 2019. Assessment of relationship between geochemical fractions of barium in soil of cherry orchards and plant barium uptake and determination by inductively coupled plasma optical emission spectrometry. At Spectrosc. 40(5):173–178.
  • Sungur A, İşler M. 2021. Geochemical fractionation, source identification and risk assessments for trace metals in agricultural soils adjacent to a city center (Çanakkale, NW Turkey). Environ Earth Sci. 80(8):1–12.
  • Sungur A, Kavdir Y, Özcan H, İlay R, Soylak M. 2021. Geochemical fractions of trace metals in surface and core sections of aggregates in agricultural soils. Catena. 197:104995.
  • Sungur A, Soylak M, Yilmaz S, Ozcan H. 2016. Heavy metal mobility and potential availability in animal manure: using a sequential extraction procedure. J Mater Cycles Waste. 18(3):563–572.
  • Sungur A, Soylak M, Yilmaz E, Yilmaz S, Ozcan H. 2015. Characterization of heavy metal fractions in agricultural soils by sequential extraction procedure: the relationship between soil properties and heavy metal fractions. Soil Sediment Contam. 24(1):1–15.
  • Sungur A, Vural A, Gundogdu A, Soylak M. 2020. Effect of antimonite mineralization area on heavy metal contents and geochemical fractions of agricultural soils in Gümüşhane Province, Turkey. Catena. 184:104255.
  • Thomas GW. 1996. Soil pH and soil acidity. In: Sparks DL, Page AL, Helmke PA, Loppert RH, Soltanpour PN, Tabatabai MA, Johnston CT, Summner ME, editors. Methods of soil analysis, part 3: chemical methods. Madison: ASA and SSSA; p. 475–490.
  • Tuzen M, Sari H, Soylak M. 2004. Microwave and wet digestion procedures for atomic absorption spectrometric determination of trace metals contents of sediment samples. Anal Lett. 37(9):1925–1936.
  • Ulgen N, Yurtsever N 1995. The guide of fertilizer and fertilization for Turkey. Publishing Ministry of Agriculture and Forestry. Soil Water General Directorate.
  • Varol M, Gündüz K, Sünbül MR. 2021. Pollution status, potential sources and health risk assessment of arsenic and trace metals in agricultural soils: a case study in Malatya province, Turkey. Environ Res. 202:111806.
  • Verla EN, Verla AW, Osisi AF, Okeke PN, Enyoh CE. 2019. Finding a relationship between mobility factors of selected heavy metals and soil particle size in soils from children’s playgrounds. Environ Monit Assess. 191(12):1–11.
  • Vodyanitskii Y, Vlasov D. 2021. Integrated assessment of affinity to chemical fractions and environmental pollution with heavy metals: a new approach based on sequential extraction results. Int J Environ Res Public Health. 18(16):8458.
  • Yutong Z, Qing X, Shenggao L. 2016. Distribution, bioavailability, and leachability of heavy metals in soil particle size fractions of urban soils (northeastern China). Environ Sci Pollut Res. 23(14):14600–14607.
  • Zhang Q, Zhang F, Huang C. 2021. Heavy metal distribution in particle size fractions of floodplain soils from Dongchuan, Yunnan Province, Southwest China. Environ Monit Assess. 193(2):1–17.
  • Zhang F, Zhou Y. 2020. Evaluation of the extraction efficiency of heavy metals (Pb, Cd, Cu) in soil–bayberry system. Soil Sediment Contam. 29(2):246–255.
  • Zheng XJ, Chen M, Wang JF, Li FG, Liu Y, Liu YC. 2020. Ecological risk assessment of heavy metals in the vicinity of tungsten mining areas, Southern Jiangxi province. Soil Sediment Contam. 29(6):665–679.

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