Open Access

Dynamics of changes in the concentration of polycyclic aromatic hydrocarbons in selected Polish surface water

   | Sep 30, 2020

Cite

ADAMCZEWSKA M., SIEPAK J. & GRAMOWSKA H. 2000. Studies of levels of polycyclic aromatic hydrocarbons in soils subjected to anthropopressure in the city of Poznań. Pol. J. Environ. Stud. 9(4):305–321.ADAMCZEWSKAM.SIEPAKJ.GRAMOWSKAH.2000Studies of levels of polycyclic aromatic hydrocarbons in soils subjected to anthropopressure in the city of PoznańPol. J. Environ. Stud.94305321Search in Google Scholar

BUSZEWSKI B., OLSZOWY P., SZULTKA M. & JEŻEWSKA A. 2012. New approaches to extraction techniques in determination of 4,4′-methylenebis(2-chloroaniline) in air and water solutions. Talanta 93:117–121.BUSZEWSKIB.OLSZOWYP.SZULTKAM.JEŻEWSKAA.2012New approaches to extraction techniques in determination of 4,4′-methylenebis(2-chloroaniline) in air and water solutionsTalanta9311712110.1016/j.talanta.2012.01.05722483886Search in Google Scholar

Directive 2013/39/EU of the European Parliament and of the Council of 12 August 2013 amending Directives 2000/60/EC and 2008/105/EC as regards priority substances in the field of water Policy.Directive 2013/39/EU of the European Parliament and of the Council of 12 August 2013 amending Directives 2000/60/EC and 2008/105/EC as regards priority substances in the field of water PolicySearch in Google Scholar

FENG J., HU P., LI X., LIU S. & SUN J. 2016. Ecological and health risk assessment of polycyclic aromatic hydrocarbons (PAHs) in surface water from middle and lower reaches of the Yellow River. Polycyclic Aromatic Compounds 00:1–15.FENGJ.HUP.LIX.LIUS.SUNJ.2016Ecological and health risk assessment of polycyclic aromatic hydrocarbons (PAHs) in surface water from middle and lower reaches of the Yellow RiverPolycyclic Aromatic Compounds0011510.1080/10406638.2015.1042552Search in Google Scholar

FROGER C., AYRAULT S., GASPERI J., CAUPOS E., MONVOISIN G., EVRARD O. & QUANTIN C. 2019. Innovative combination of tracing methods to differentiate between legacy and contemporary PAH sources in the atmosphere-soil-river continuum in an urban catchment (Orge River, France). Sci. Total Environ. 669:448–458.FROGERC.AYRAULTS.GASPERIJ.CAUPOSE.MONVOISING.EVRARDO.QUANTINC.2019Innovative combination of tracing methods to differentiate between legacy and contemporary PAH sources in the atmosphere-soil-river continuum in an urban catchment (Orge River, France)Sci. Total Environ.66944845810.1016/j.scitotenv.2019.03.15030884267Search in Google Scholar

GADZAŁA-KOPCIUCH R., KLUSKA M., WEŁNIAK M. & BUSZEWSKI B. 2005. Silicon dioxide surfaces with aryl interaction sites for chromatographic applications. Mater. Chem. Phys. 89:228–237.GADZAŁA-KOPCIUCHR.KLUSKAM.WEŁNIAKM.BUSZEWSKIB.2005Silicon dioxide surfaces with aryl interaction sites for chromatographic applicationsMater. Chem. Phys.8922823710.1016/j.matchemphys.2004.03.022Search in Google Scholar

JABŁOŃSKA J. & KLUSKA M. 2019. Dynamics of mercury content changes in snow in the heating season on the example of the city of Siedlce. Ochrona Środowiska i Zasobów Naturalnych, Environmental Protection and Natural Resources, Instytut Ochrony Środowiska - Państwowy Instytut Badawczy 30(1):19–24.JABŁOŃSKAJ.KLUSKAM.2019Dynamics of mercury content changes in snow in the heating season on the example of the city of SiedlceOchrona Środowiska i Zasobów Naturalnych, Environmental Protection and Natural ResourcesInstytut Ochrony Środowiska - Państwowy Instytut Badawczy301192410.2478/oszn-2019-0004Search in Google Scholar

JABŁOŃSKA J., KLUSKA M. & ERCHAK N. 2020. Development of a procedure for the isolation of electrostatically stabilized silanates from wheat sample | Opracowanie procedury izolacji elektrostatycznie stabilizowanych silanatów z próbek pszenicy. Przemysł Chemiczny. 99(4):605–608.JABŁOŃSKAJ.KLUSKAM.ERCHAKN.2020Development of a procedure for the isolation of electrostatically stabilized silanates from wheat sample | Opracowanie procedury izolacji elektrostatycznie stabilizowanych silanatów z próbek pszenicyPrzemysł Chemiczny99460560810.15199/62.2020.4.18Search in Google Scholar

KIEŁBASA A. & BUSZEWSKI B. 2015a. PAH analytics in new Polish reference material. Pol. J. Environ. Stud. 24(5):2021–2028.KIEŁBASAA.BUSZEWSKIB.2015aPAH analytics in new Polish reference materialPol. J. Environ. Stud.2452021202810.15244/pjoes/41596Search in Google Scholar

KIEŁBASA A. & BUSZEWSKI B. 2017b. PAHs in animal tissues – the analytics of PAHs in new reference materials and their homogeneity. Anal. Methods 9:76–83.KIEŁBASAA.BUSZEWSKIB.2017bPAHs in animal tissues – the analytics of PAHs in new reference materials and their homogeneityAnal. Methods9768310.1039/C6AY01858KSearch in Google Scholar

KIEŁBASA A. & BUSZEWSKI B. 2017c. River bottom sediment from the Vistula as matrix of candidate for a new reference material. Ecotoxicol. Environ. Safety 142:237–242.KIEŁBASAA.BUSZEWSKIB.2017cRiver bottom sediment from the Vistula as matrix of candidate for a new reference materialEcotoxicol. Environ. Safety14223724210.1016/j.ecoenv.2017.03.00728419950Search in Google Scholar

KLUSKA M. & PYPOWSKI K. 2007. Separation of tribenzylhydrogermanium nitrile derivatives by means of HPLC with participation of π–π interactions. J. Liq. Chromatogr. Rel. Technol. 30:2059–2067.KLUSKAM.PYPOWSKIK.2007Separation of tribenzylhydrogermanium nitrile derivatives by means of HPLC with participation of π–π interactionsJ. Liq. Chromatogr. Rel. Technol.302059206710.1080/10826070701435061Search in Google Scholar

KLUSKA M. 2008. Some aspects of the analysis of biologically active organogermanium substances. Crit. Rev. Anal. Chem. 38(2):84–92.KLUSKAM.2008Some aspects of the analysis of biologically active organogermanium substancesCrit. Rev. Anal. Chem.382849210.1080/10408340701804459Search in Google Scholar

KLUSKA M., KOMASIŃSKA M., JABŁOŃSKA J. & PRUKAŁA W. 2018. Challenges of HPLC determination of quinoline derivatives used in the treatment of malaria. J. Liq. Chromatogr. Rel. Technol. 41(8):451–457.KLUSKAM.KOMASIŃSKAM.JABŁOŃSKAJ.PRUKAŁAW.2018Challenges of HPLC determination of quinoline derivatives used in the treatment of malariaJ. Liq. Chromatogr. Rel. Technol.41845145710.1080/10826076.2018.1448870Search in Google Scholar

KLUSKA M., LIEPINSH E., PYPOWSKI K. & ERCHAK N. 2008a. Separation of azepinio-methyl derivatives of ES-silanates by the use of aryl stationary phases in HPLC. J. Liq. Chromatogr. Rel. Technol. 31:675–682.KLUSKAM.LIEPINSHE.PYPOWSKIK.ERCHAKN.2008aSeparation of azepinio-methyl derivatives of ES-silanates by the use of aryl stationary phases in HPLCJ. Liq. Chromatogr. Rel. Technol.3167568210.1080/10826070701853826Search in Google Scholar

KLUSKA M., LIEPINSH E., PYPOWSKI K., CHRZĄŚCIK I., MICHEL M. & ERCHAK N. 2008b. Separation of selected derivatives of Hoszczawa-silanates, taking advantage of π–π interactions. J. Liq. Chromatogr. Rel. Technol. 31:2812–2820.KLUSKAM.LIEPINSHE.PYPOWSKIK.CHRZĄŚCIKI.MICHELM.ERCHAKN.2008bSeparation of selected derivatives of Hoszczawa-silanates, taking advantage of π–π interactionsJ. Liq. Chromatogr. Rel. Technol.312812282010.1080/10826070802388466Search in Google Scholar

KLUSKA M., PYPOWSKI K. & ERCHAK N. 2007. Separation of hexabenzyldigermoxane and hexabenzyldigermanium by HPLC. J. Liq. Chromatogr. Rel. Technol. 30:1777–1785.KLUSKAM.PYPOWSKIK.ERCHAKN.2007Separation of hexabenzyldigermoxane and hexabenzyldigermanium by HPLCJ. Liq. Chromatogr. Rel. Technol.301777178510.1080/10826070701360418Search in Google Scholar

KOŃCZYK J., MICHALSKI R., KOZAK M., CIEŚLIK P. & NOWICKA M. 2018. Wybrane zanieczyszczenia organiczne w zlewniach wód ujmowanych do uzdatniania przez Stacje Wodociągowe Górnośląskiego Przedsiębiorstwa Wodociągów. Chemistry, Environmental, Biotechnology 21:52–62.KOŃCZYKJ.MICHALSKIR.KOZAKM.CIEŚLIKP.NOWICKAM.2018Wybrane zanieczyszczenia organiczne w zlewniach wód ujmowanych do uzdatniania przez Stacje Wodociągowe Górnośląskiego Przedsiębiorstwa WodociągówChemistry, Environmental, Biotechnology21526210.16926/cebj.2018.21.11Search in Google Scholar

KOWALSKI A., SIEPAK M. & BOSZKE L. 2007. Mercury contamination of surface and ground waters of Poznań city, Poland. Pol. J. Environ. Stud. 16(1):67–74.KOWALSKIA.SIEPAKM.BOSZKEL.2007Mercury contamination of surface and ground waters of Poznań city, PolandPol. J. Environ. Stud.1616774Search in Google Scholar

LEVKINA V.V., PETRUK E.S., POPIK M.V., PIROGOV A.V. & SHPIGUN O.A. 2017. The use of microemulsions for the extraction and simultaneous preconcentration of maltenes as potential chemical markers to identify hydrocarbon deposits. Moscow Univ. Chem. Bull. 72:303–306.LEVKINAV.V.PETRUKE.S.POPIKM.V.PIROGOVA.V.SHPIGUNO.A.2017The use of microemulsions for the extraction and simultaneous preconcentration of maltenes as potential chemical markers to identify hydrocarbon depositsMoscow Univ. Chem. Bull.7230330610.3103/S0027131418010030Search in Google Scholar

LEVKINA V.V., PIROGOV A.V., PETRUK E.S., JANG M., BOLOTNIK T.A., MYLENKOVA A.Y., POPIK M.V., BUSZEWSKI B. & SHPIGUN O.A. 2018. Application of microemulsions for the extraction, pre-concentration of PAHs as a tool for fast screening of perspective oil chemical markers. J. Liq. Chromatogr. Rel. Technol. 41:1004–1012.LEVKINAV.V.PIROGOVA.V.PETRUKE.S.JANGM.BOLOTNIKT.A.MYLENKOVAA.Y.POPIKM.V.BUSZEWSKIB.SHPIGUNO.A.2018Application of microemulsions for the extraction, pre-concentration of PAHs as a tool for fast screening of perspective oil chemical markersJ. Liq. Chromatogr. Rel. Technol.411004101210.1080/10826076.2018.1555168Search in Google Scholar

MAŁKIEWICZ K., TURŁO J., MARCINIUK-KLUSKA A., GRZECH-LEŚNIAK K., GĄSIOR M. & KLUSKA M. 2015. Release of bisphenol A and its derivatives from orthodontic adhesive systems available on the European market as a potential health risk factor. Ann. Agric. Environ. Med. 22(1):172–177.MAŁKIEWICZK.TURŁOJ.MARCINIUK-KLUSKAA.GRZECH-LEŚNIAKK.GĄSIORM.KLUSKAM.2015Release of bisphenol A and its derivatives from orthodontic adhesive systems available on the European market as a potential health risk factorAnn. Agric. Environ. Med.22117217710.5604/12321966.114139025780850Search in Google Scholar

MICHALSKI R. & FICEK A. 2016. Environmental pollution by chemical substances used in the shale gas extraction – a review. Desalination and Water Treatment, 57:1336–1343.MICHALSKIR.FICEKA.2016Environmental pollution by chemical substances used in the shale gas extraction – a reviewDesalination and Water Treatment571336134310.1080/19443994.2015.1017331Search in Google Scholar

MICHALSKI R. 2005. Trace level determination of Cr(III)/Cr(VI) in water samples using ion chromatography with UV detection. J. Liq. Chromatogr. Rel. Technol. 28(18):2849–2862.MICHALSKIR.2005Trace level determination of Cr(III)/Cr(VI) in water samples using ion chromatography with UV detectionJ. Liq. Chromatogr. Rel. Technol28182849286210.1080/10826070500269901Search in Google Scholar

MILYUKIN M.V. & GONCHARUK V.V. 2019. Chemical monitoring of organic ecotoxicants in aqueous systems. J. Water Chem. Technol. 41:307–312.MILYUKINM.V.GONCHARUKV.V.2019Chemical monitoring of organic ecotoxicants in aqueous systemsJ. Water Chem. Technol.4130731210.3103/S1063455X19050060Search in Google Scholar

MOGASHANE T.M., MUJURU M., MCCRINDLE R.I. & AMBUSHE A.A. 2020. Quantification, source apportionment and risk assessment of polycyclic aromatic hydrocarbons in sediments from Mokolo and Blood Rivers in Limpopo Province, South Africa. J. Environ. Sci. Heal. A. 55(1):71–81.MOGASHANET.M.MUJURUM.MCCRINDLER.I.AMBUSHEA.A.2020Quantification, source apportionment and risk assessment of polycyclic aromatic hydrocarbons in sediments from Mokolo and Blood Rivers in Limpopo Province, South AfricaJ. Environ. Sci. Heal. A551718110.1080/10934529.2019.166655931526109Search in Google Scholar

NAWAŁA J., CZUPRYŃSKI K., POPIEL S., DZIEDZIC D. & BEŁDOWSKI J. 2016. Development of the HS-SPME-GC-MS/MS method for analysis of chemical warfare agent and their degradation products in environmental samples. Anal. Chim. Acta 933:103–116.NAWAŁAJ.CZUPRYŃSKIK.POPIELS.DZIEDZICD.BEŁDOWSKIJ.2016Development of the HS-SPME-GC-MS/MS method for analysis of chemical warfare agent and their degradation products in environmental samplesAnal. Chim. Acta93310311610.1016/j.aca.2016.05.03327497003Search in Google Scholar

POPIEL S. & NAWAŁA J. 2013. Detoxification of sulfur mustard by enzyme-catalyzed oxidation using chloroperoxidase. Enzyme Microb. Technol. 53(5):295–301.POPIELS.NAWAŁAJ.2013Detoxification of sulfur mustard by enzyme-catalyzed oxidation using chloroperoxidaseEnzyme Microb. Technol.53529530110.1016/j.enzmictec.2013.06.00224034427Search in Google Scholar

POPIEL, S., NAWAŁA, J. & CZUPRYŃSKI, K. 2014. Preparation and application of sol-gel acrylate and methacrylate solid-phase microextraction fibres for gas chromatographic analysis of organoarsenic compounds. Anal. Chim. Acta 837:52–63.POPIELS.NAWAŁAJ.CZUPRYŃSKIK.2014Preparation and application of sol-gel acrylate and methacrylate solid-phase microextraction fibres for gas chromatographic analysis of organoarsenic compoundsAnal. Chim. Acta837526310.1016/j.aca.2014.05.03925000858Search in Google Scholar

PRUKAŁA W., PYPOWSKI K., CHRZĄŚCIK I. & KLUSKA M. 2008. Separation of biologically active isomers of (E)-N-meta- and para-nitroazastilbenes by the HPLC technique. J. Liq. Chromatogr. Rel. Technol. 31:578–585.PRUKAŁAW.PYPOWSKIK.CHRZĄŚCIKI.KLUSKAM.2008Separation of biologically active isomers of (E)-N-meta- and para-nitroazastilbenes by the HPLC techniqueJ. Liq. Chromatogr. Rel. Technol.3157858510.1080/01630560701815218Search in Google Scholar

PYPOWSKI K., USZYŃSKA I. & KLUSKA M. 2006. Chromatographic separation of isomers of tribenzylgermanium nitrile derivatives using chemically bonded aryl stationary phases. J. Liq. Chromatogr. Rel. Technol. 29(20):2989–2996.PYPOWSKIK.USZYŃSKAI.KLUSKAM.2006Chromatographic separation of isomers of tribenzylgermanium nitrile derivatives using chemically bonded aryl stationary phasesJ. Liq. Chromatogr. Rel. Technol.29202989299610.1080/10826070600981157Search in Google Scholar

QIAN W., CHENXI L.I., RAN J.I.A., ZHENGWEI B.A.I., YI L.I. & YUCHEN Q.I.N. 2020. Rapid and simultaneous determination of fatty acid methyl esters and polycyclic aromatic hydrocarbons in diesel fuel by high-performance liquid chromatography with a selective back flush strategy. Anal. Lett. 53:834–843.QIANW.CHENXIL.I.RANJ.I.A.ZHENGWEIB.A.I.YIL.I.YUCHENQ.I.N.2020Rapid and simultaneous determination of fatty acid methyl esters and polycyclic aromatic hydrocarbons in diesel fuel by high-performance liquid chromatography with a selective back flush strategyAnal. Lett.5383484310.1080/00032719.2019.1682005Search in Google Scholar

SIUDEK P., FRANKOWSKI M. & SIEPAK J. 2016a. Atmospheric particulate mercury at the urban and forest sites in central Poland. Environ. Sci. Pollut. Res. 23:2341–2352.SIUDEKP.FRANKOWSKIM.SIEPAKJ.2016aAtmospheric particulate mercury at the urban and forest sites in central PolandEnviron. Sci. Pollut. Res.232341235210.1007/s11356-015-5476-5471717726411447Search in Google Scholar

SIUDEK P., KURZYCA I. & SIEPAK J. 2016b. Atmospheric deposition of mercury in central Poland: Sources and seasonal trends. Atmos. Res. 170:14–22.SIUDEKP.KURZYCAI.SIEPAKJ.2016bAtmospheric deposition of mercury in central Poland: Sources and seasonal trendsAtmos. Res.170142210.1016/j.atmosres.2015.11.004Search in Google Scholar

SŁOMIŃSKA M., KONIECZKA P. & NAMIEŚNIK J. 2014. New developments in preparation and use of standard gas mixtures. TRAC-Trend. Anal. Chem. 62:135–143.SŁOMIŃSKAM.KONIECZKAP.NAMIEŚNIKJ.2014New developments in preparation and use of standard gas mixturesTRAC-Trend. Anal. Chem.6213514310.1016/j.trac.2014.07.013Search in Google Scholar

SZABÓ NAGY A., SZABÓ J. & VASS I. 2013. Occurrence and distribution of polycyclic aromatic hydrocarbons in surface water of the Raba River, Hungary. J. Environ. Sci. Heal. A 48:1190–1200.SZABÓ NAGYA.SZABÓJ.VASSI.2013Occurrence and distribution of polycyclic aromatic hydrocarbons in surface water of the Raba River, HungaryJ. Environ. Sci. Heal. A481190120010.1080/10934529.2013.77645523647110Search in Google Scholar

TOLMACHEVA N.G., ZHANG M., PIROGOV A.V., POPIK M.V. & SHPIGUN O.A. 2017. Application of microemulsions to the recovery, preconcentration, and determination of ten surfactants from various soils. J. Anal. Chem. 72:602–607.TOLMACHEVAN.G.ZHANGM.PIROGOVA.V.POPIKM.V.SHPIGUNO.A.2017Application of microemulsions to the recovery, preconcentration, and determination of ten surfactants from various soilsJ. Anal. Chem.7260260710.1134/S1061934817060156Search in Google Scholar

ZHANG Y., ZHANG L., HUANG Z., LI Y., LI J., WU N., HE J., ZHANG Z., LIU Y. & NIU Z. 2019. Pollution of polycyclic aromatic hydrocarbons (PAHs) in drinking water of China: Composition, distribution and influencing factors. Ecotoxicol. Environ. Safety 177:108–116.ZHANGY.ZHANGL.HUANGZ.LIY.LIJ.WUN.HEJ.ZHANGZ.LIUY.NIUZ.2019Pollution of polycyclic aromatic hydrocarbons (PAHs) in drinking water of China: Composition, distribution and influencing factorsEcotoxicol. Environ. Safety17710811610.1016/j.ecoenv.2019.03.11930978653Search in Google Scholar

eISSN:
2353-8589
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Life Sciences, Ecology