Цитирование: | 1. Al-Abdali, F., Massoud, M.S., Al-Ghadban, A.N., Bottom sediments of the Arabian Gulf-III. Trace metal contents as indicators of pollution and implications for the effect and fate of the Kuwait Oil Slick. Environ. Pollut. 93 (1996), 285–301.
2. Al-Absi, E., Manasrah, R., Abukashabeh, A., Wahsha, M., Assessment of heavy metal pollutants at various sites along the Jordanian coastline of the Gulf of Agaba, Red Sea. J. Environ. Anal. Chem. 99:8 (2019), 726–740.
3. Alloway, B.J., (eds.) Heavy Metals in Soils, 1995, Blackie Academic and Professional, London.
4. Antunes, J.C., Frias, J.G.L., Micaelo, A.C., Sobral, P., Resin pellets from beaches of the Portuguese coast and adsorbed persistent organic pollutants. Estuar. Coast. Shelf Sci. 130 (2013), 62–69.
5. Barwick, V. (Ed), 2016. Eurachem/CITAC Guide: Guide to Quality in Analytical Chemistry: An Aid to Accreditation, 3rd ed., CITAC, London.
6. Berkin, N.S., Makarov, A.A., Rusinek, O.T., Baikal Studies. 2009, State University Press, Irkutsk.
7. Bhuiyan, M.A.N., Parvez, L., Islam, M.A., Dampare, S.B., Suzuki, S., Heavy metals pollution of coal mine-affected agricultural soils in the northern part of Bangladesh. J. Hazard. Mater. 173 (2010), 384–392.
8. Bird, E., The modern prevalence of beach erosion. Mar. Pollut. Bull. 18 (1987), 151–157.
9. Borg, H., Jonsson, P., Large-scale metal distribution in Baltic Sea sediments. Mar. Pollut. Bull. 32:1 (1996), 8–21.
10. CAS: American chemical agency. https://www.cas.org/support/documentation/chemical-substances (accessed Nov. 15, 2020a).
11. CAS: American chemical agency. https://www.cas.org/support/documentation/cas-databases (accessed Nov. 15, 2020b).
12. Catalog of Reference materials of the composition of natural and industrial environments, 2013. Institute of Geochemistry, SB RAS, Irkutsk. http://www.igc.irk.ru/ru/component/flexicontent/item/3412-standartnye-obraztsy-sostava?Itemid=746>. (accessed Aug. 17, 2020).
13. CCME, Canadian Council of Ministers of the Environment, 2007. Canadian soil quality guidelines for the protection of environmental and human health. http://esdat.net/Environmental%20Standards/Canada/SOIL/rev_soil_summary_tbl_7.0_e.pdf (accessed Sep. 27, 2020).
14. Chandrasekaran, S., Pillai, G.S., Venkatraman, B., Spatial and heavy metal assessment in beach sands of east coast of Tamil Nadu, India. Environ. Nanotechnol. Monit. Manag., 14, 2020, 100324.
15. Cherkashina, T.Yu, Shtel'makh, S.I., Pashkova, G.V., Determination of trace elements in calcium rich carbonate rocks by Wavelength Dispersive X-ray Fluorescence Spectrometry for environmental and geochemical studies. Appl. Radiat. Isot. 130 (2017), 153–161.
16. Chernykh, N.A., Patterns of Behavior of Heavy Metals in the Soil-Plant System Under Various Anthropogenic Impacts, Author's Abstract of the Doctor of Biological Sciences. 1995, All-Russian Scientific Research Institute of Agrochemistry, RAS, Moscow.
17. Church, S.E., Multi-element analysis of fifty-four geochemical reference samples using inductively coupled plasma-atomic emission spectrometry. Geostand. Geoanal. Res. 5:2 (1981), 133–160, 10.1111/j.1751-908x.1981.tb00320.x.
18. Coskun, M., Steinnes, E., Frontasyeva, M.V., Sjobakk, T.E., Demkina, S., Heavy metal pollution of surface soil in the Thrace region, Turkey. Environ. Monit. Assess. 119 (2006), 545–556.
19. Dang, Z., Liu, C., Haigh, M.J., Mobility of heavy metals associated with the natural weathering of coal mine spoils. Environ. Pollut. 118 (2002), 419–426.
20. Donskoy, S.E., 2013. Order of the Ministry of Natural Resources No. 251 of July 18. On the reorganization of state institutions subordinate to the Ministry of Natural Resources and Environment of the Russian Federation. http://www.consultant.ru/cons/cgi/online.cgi?req=doc&base=EXP&n=640409#06705075793851771 (accessed Sep. 11, 2020).
21. Dou, Y., Li, J., Zhao, J., Hu, B., Yang, S., Distribution, enrichment and source of heavy metals in surface sediments of the eastern Beibu Bay, South China Sea. Mar. Pollut. Bull. 67:1–2 (2013), 137–145.
22. Dragovic, S., Mihailovic, N., Gajic, B., Heavy metals in soils: distribution, relationship with soil characteristics and radionuclides and multivariate assessment of contamination sources. Chemosphere 72 (2008), 491–495.
23. El Zrelli, R., Courjault-Rade, P., Rabaoui, L., Castet, S., Michel, S., Bejaoui, N., Heavy metal contamination and ecological risk assessment in the surface sediments of the coastal area surrounding the industrial complex of Gabes city, Gulf of Gabes, SE Tunisia. Mar. Pollut. Bull. 101 (2015), 922–929.
24. Ergin, M., Saydam, C., Basturk, O., Erdem, E., Yoruk, R., Heavy metal concentrations in surface sediments from the two coastal inlets (Golden Horn Estuary and Izmit Bay) of the northeastern Sea of Marmara. Chem. Geol. 91 (1991), 269–285.
25. FPRD, Federal Preservation Regulation Document, PND F 16.1:2:2.2.80-2013, 2013. The determination of Hg content in soils, grounds, benthal deposits, and clays. Technique М 03-09-2013, LUMEX, St. Petersburg. https://www.lumex.ru/metodics/13AR08.25.01-1.pdf (accessed Jun. 11, 2020).
26. Fradkov, M.E., 2006. Order of the Government of the Russian Federation of November 27, No. 1641-р. Approval of the boundaries of the Baikal natural territory and its ecological zones. http://base.garant.ru/2161809/ (accessed Sep. 10, 2020).
27. Galaziy, G.I., Parmuzin, Y.P., Dynamics of the Baikal Depression. 1975, Nauka, Novosibirsk.
28. Gao, Z., Fu, W., Zhang, M., Zhao, K., Tunney, H., Guan, Y., Potentially hazardous metals contamination in soil-rice system and it's spatial variation in Zhengzhou City, China. J. Geochem. Explor. 167 (2016), 62–69.
29. Geological Survey of Japan (GSJ). < https://gbank.gsj.jp/geostandards/welcome.html> (accessed Aug. 17, 2020).
30. Goldschmidt, V.M., Geochemistry, 1954, Oxford University Press, London.
31. Gholizadeh, M., Patimar, R., Ecological risk assessment of heavy metals in surface sediments from the Gorgan Bay, Caspian Sea. Mar. Pollut. Bull. 137 (2018), 662–667.
32. Gonzalez-Macias, C., Schifter, I., Lluch-Cota, D.B., Mendez-Rodriguez, L., Hernandez-Vazquez, S., Distribution, enrichment and accumulation of heavy metals in coastal sediments of Salina Cruz Bay, Mexico. Environ. Monit. Assess. 118 (2006), 211–230.
33. Govindaraju, K., 1994. 1994 compilation of working values and sample description for 383 Geostandards. Geostand. Geoanalyt. Res. 18(1), 1–158.
34. Grachev, M.A., On the Current State of the Ecological System of Lake Baikal. 2002, SB RAS, Novosibirsk.
35. Grebenshchikova, V.I., Lustenberg, E.E., Kitayev, N.A., Lomonosov, I.S., 2008. Geochemistry of the environment of the Baikal region (Baikal geoecological polygon), Academic Publishing House “GEO”, Novosibirsk.
36. Gu, X., Xu, L., Wang, Z., Ming, X., Dang, P., Ouyang, W., Lin, C., Liu, X., He, M., Wang, B., Assessment of cadmium pollution and subsequent ecological and health risks in Jiaozhou Bay of the Yellow Sea. Sci. Total Environ., 774, 2021, 145016.
37. Hakanson, L., An ecological risk index for aquatic pollution control. A sedimentological approach. Water Res. 14 (1980), 975–1001.
38. Helety, V.F., Kalmychkov, G.V., Parkhomenko, I.Yu, Mercury in the sedimentary series of Lake Baikal. Geochimia 2 (2007), 199–207.
39. Holmes, A.L., Turner, A., Thompson, R.C., Adsorption of trace metals to plastic resin pellets in the marine environment. Environ. Pollut. 160 (2012), 42–48.
40. IARC, International Agency for Research on Cancer, 2018. Agents Classified by the IARC Monographs. https://monographs.iarc.fr/agents-classified-by-the-iarc/. (accessed Oct. 10, 2020).
41. Il'in, V.B., Heavy Metals in Soil-Plant System. 1991, Nauka Press, Novosibirsk.
42. Industrial Standard, 41-08-212-04, 2005. Quality control of analytical works, Russia Scientific Research Institute of Mineral Resources, Moscow.
43. Kim, S.-M., Choi, Y., Mapping heavy metal concentrations in beach sands using GIS and portable XRF data. J. Mar. Sci. Eng., 7(2), 2019, 42.
44. Konopatskii, A.K., The Ancient Cultural of Baikal (Olkhon Island). 1982, Nauka Press, Novosibirsk.
45. Kuz'min, V.A., 2005. Soil Geochemistry of the South of the Eastern Siberia, Geography Institute, SB RAS, Irkutsk.
46. Lalah, J.O., Wandiga, S.O., Ochieng, E.Z., Sources of heavy metal input into Winam Gulf, Kenya. Bull. Environ. Comtam. Toxicol. 81 (2008), 277–284.
47. Li, H., Kang, X., Li, X., Li, Q., Song, J., Jiao, N., Zhang, Y., Heavy metals in surface sediments along the Weihai coast, China: distribution, sources and contamination assessment. Mar. Pollut. Bull. 115 (2017), 551–558.
48. Li, Z., Ma, Z., van der Kuijp, T.J., Yuan, Z., Huang, L., A review of soil heavy metal pollution from mines in China: pollution and health risk assessment. Sci. Total Environ. 468–469 (2014), 843–853.
49. Lin, Y., Meng, F., Du, Y., Tan, Y., Distribution, speciation, and ecological risk assessment of heavy metals in surface sediments of Jiaozhou Bay, China. Hum. Ecol. Risk. Assess. 22 (2016), 1253–1267.
50. Liu, G., Tao, L., Liu, X., Hou, J., Wang, A., Li, R., Heavy metal speciation and pollution of agricultural soils along Jishui River in non-ferrous metal mine area in Jiangxi Province, China. J. Geochem. Explor. 132 (2013), 156–163.
51. Liu, P., Hu, W., Tian, K., Huang, B., Zhao, Y., Wang, X., Zhou, Y., Shi, B., Kwon, B.-O., Choi, K., Ryu, J., Chen, Y., Wang, T., Khim, J.S., Accumulation and ecological risk of heavy metals in soils along the coastal areas of the Bohai Sea and the Yellow Sea: a comparative study of China and South Korea. Environ. Int., 137, 2020, 105519.
52. Liu, Q., Wang, F., Meng, F., Jiang, L., Li, G., Zhou, R., Assessment of metal contamination in estuarine surface sediments from Dongying City, China: use of modified ecological risk index. Mar. Pollut. Bull. 126 (2018), 293–303.
53. Magiera, T., Zawadzki, J., Szuszkiewicz, M., Fabijańczyk, P., Steinnes, E., Impact of an iron mine and a nickel smelter at the Norwegian/Russian border close to the Barents Sea on surface soil magnetic susceptibility and content of potentially toxic elements. Chemosphere 195 (2018), 48–62.
54. Magnusson, B., Örnemark, U., (eds.) Eurachem Guide: The Fitness for Purpose of Analytical Methods – A Laboratory Guide to Method Validation and Related Topics, 2014, Eurachem Press, London.
55. Margui, E., Hidalgo, M., Queralt, I., Multielemental fast analysis of vegetation samples by wavelength dispersive X-ray fluorescence spectrometry: possibilities and drawbacks. Spectrochim. Acta 60 B (2005), 1363–1372.
56. M-MVI-80-2008 (F.R. 1.31.2004.01278), 2008. Method of the Measuring Performance of the Mass Fraction of the Soil Samples, Grounds, and Bottom Sediments by Atomic Emission and Atomic Absorption Spectrometry, St. Petersburg Press., St. Petersburg.
57. Muller, G., Index of geo-accumulation in sediments of the Rhine River. Geojournal 2 (1969), 108–118.
58. Nowrouzi, M., Pourkhabbaz, A., Application of geoaccumulation index and enrichment factor for assessing metal contamination in the sediments of Hara Biosphere Reserve, Iran. Chem. Spec. Bioavailab. 26 (2014), 99–105.
59. Onishchenko, G.G., Maximum Permissible Concentrations (MACs) of Chemicals in Soil: Hygienic Standards. 2006, Federal Center for Hygiene and Epidemiology of Rospotrebnadzor, Moscow.
60. Ozturk, M., Ashraf, M., Aksoy, A., Ahmad, M.S.A., Hakeem, K.R., (eds.) Plants, Pollutants and Remediation, 2015, Springer.
61. Pellinen, V.A., Cherkashina, T.Yu, Pashkova, G.V., Gustaitis, M.A., Zhurkova, I.S., Shtelmakh, S.I., Panteeva, S.V., Assessment of the ecological state of the soil cover of the Olkhon Island (according to experimental data). The Bull. Irkutsk State Univer. Series "Earth Sciences". 16 (2016), 79–90.
62. Pinegin, A.V., The Main Patterns of Formation and Dynamics of the Coastal Zone of Lake Baikal, Author's Abstract of the Candidate of Geological and Mineralogical Sciences, Institute of the Earth's Crust. 1975, SB AS USSR, Irkutsk.
63. Qu, C., Ma, Z., Yang, J., Lie, Y., Bi, J., Huang, L., 2014. Human Exposure Pathways of Heavy Metal in a Lead-Zinc Mining Area. Heavy Metal Contamination of Water and Soil: Analysis, Assessment, and Remediation Strategies, Apple Academic Press, Oakville, Ontario, Plant Sci. Res., pp. 129–156.
64. Rinklebe, J., Antoniadis, V., Shaheen, S.M., Rosche, O., Altermann, M., Health risk of potentially toxic elements in soils along the Central Elbe River, Germany. Environ. Int. 126 (2019), 76–88.
65. Rodriguez, L., Ruiz, E., Alonso-Azcarate, J., Rincon, J., Heavy metal distribution and chemical speciation in tailings and soils around a Pb-Zn mine in Spain. J. Environ. Manag. 90 (2009), 1106–1116.
66. Ross, S.M., Toxic Metals in Soil Plant Systems. 1994, Willey, Chichester.
67. Saraee, K.R.E., Abdi, M.R., Naghavi, K., Saion, E., Shafaei, M.A., Soltani, N., Distribution of heavy metals in surface sediments from the South China Sea ecosystem. Malaysia. Environ. Monit. Assess. 183:1–4 (2011), 545–554.
68. Seaward, M.R.D., Richardson, D.H.S., Atmospheric sources of metal pollution and effects on vegetation. Shaw, A.J., (eds.) Heavy Metal Tolerance in Plants Evolutionary Aspects, 1990, CRC Press, Boca Raton, 75–94.
69. Service Manual, S8 TIGER XRF Spectrometer. 2007, Bruker AXS GmbH, Karlsruhe.
70. Simex, S.A., Helz, G.R., Regional geochemistry of trace elements in Checapeake Bay. Environ. Geol. 3:6 (1981), 315–323.
71. SPECTRAplus. Version 2.2.3.1, 2008. Software package for X-Ray Spectrometers, Bruker AXS GmbH, Karlsruhe.
72. Sutherland, R.A., Bed sediment-associated trace metals in an urban stream, Oahu, Havaii. Environ. Geol. 39:6 (2000), 611–627.
73. Tomlinson, D.L., Wilson, J.G., Harris, C.R., Jeffrey, D.W., Problems in the assessment of heavy-metal levels in estuaries and the formation of a pollution index. Helgol. Mar. Res. 33 (1980), 566–575.
74. United States Geological Survey (USGS). < http://crustal.usgs.gov/geochemical_reference_standards/powdered_RM.html> http://minerals.cr.usgs.gov/geo_chem_stand/ (accessed Aug. 17, 2020).
75. Vinogradov, A.P., Geochemistry of Rare and Dispersed Chemical Elements in Soils. 1957, USSR Academy of Sciences, Moscow.
76. Vivas, A., Biro, B., Ruiz-Lozano, J.M., Barea, J.M., Azcon, R., Two bacterial strains isolated from a Zn-polluted soil enhance plant growth and mycorrhizal efficiency under Zn-toxicity. Chemosphere 62 (2006), 1523–1533.
77. Vodyanitskii, Yu.N., Contamination of soils with heavy metals and metalloids and its ecological hazard (analytic review). Eurasian Soil Sci. 46 (2013), 793–801.
78. Volgina, T.N., Novikov, V.T., Denekova, A.Yu, One of the ways to solve the problem of destruction of organometallic pesticides. Modern Knowledge Intens. Tech. 3 (2009), 55–56.
79. Wei, B., Yang, L., A review of heavy metal contaminations in urban soils, urban road dusts and agricultural soils from China. Microchem. J. 94 (2010), 99–107.
80. Wei, B., Jiang, F., Li, X., Mu, S., Spatial distribution and contamination assessment of heavy metals in urban road dusts from Urumgi, NW China. Microchem. J. 93 (2009), 147–152.
81. World Heritage List of UNESCO. http://whc.unesco.org/en/list/754 (accessed Sep. 10, 2020).
82. Yaqin, J.I., Yinchang, F.E.N.G., Jianhui, W.U., Tan, Z.H.U., Zhipeng, B.A.I., Chiqing, D.U.A.N., Using geoaccumulation index to study sources profiles of soil dusts in China. J. Environ. Sci. 20 (2008), 571–578.
83. Zhang, A., Wang, L., Zhao, S., Yang, X., Zhao, Q., Heavy metals in seawater and sediments from the northern Liaodong Bay of China: levels, distribution and potential risks. Reg. Stud. Mar. Sci. 11 (2017), 32–42.
84. Zhang, J., Liu, C.L., Riverine composition and estuarine geochemistry of particulate metals in China – weathering features, anthropogenic impact and chemical fluxes. Estuar. Coast. Shelf Sci. 54 (2002), 1051–1070.
85. Zhang, L., Wong, M.H., Environmental mercury contamination in China: sources and impacts. Environ. Int. 33 (2007), 108–121.
86. Zhang, M., He, P., Qiao, G., Huang, J., Yuan, X., Li, Q., Heavy metal contamination assessment of surface sediments of the Subei Shoal, China: spatial distribution, source apportionment and ecological risk. Chemosphere 223 (2019), 211–222.
87. Zhang, P., Qin, C., Hong, X., Kang, G., Qin, M., Yang, D., Pang, B., Li, Y., He, J., Dick, R.P., Risk assessment and source analysis of soil heavy metal pollution from lower reaches of Yellow River irrigation in China. Sci. Total Environ. 633 (2018), 1136–1147.
|