[1]

Taghavi M, Darvishiyan M, Momeni M, Eslami H, Ali Fallahzadeh R, et al. 2023. Ecological risk assessment of trace elements (TEs) pollution and human health risk exposure in agricultural soils used for saffron cultivation. Scientific Reports 13:4556

doi: 10.1038/s41598-023-31681-x
[2]

Sikakwe GU, Eyong GA, Ilaomo BU. 2023. Contamination of arable soil with toxic trace elements (TEs) around mine sites and the assessment of associated human health risks. Soil and Sediment Contamination: An International Journal 32:1157−1192

doi: 10.1080/15320383.2023.2172381
[3]

Gupta N, Yadav KK, Kumar V, Kumar S, Chadd RP, et al. 2019. Trace elements in soil-vegetables interface: translocation, bioaccumulation, toxicity and amelioration - a review. Science of The Total Environment 651:2927−2942

doi: 10.1016/j.scitotenv.2018.10.047
[4]

Jensen H, Gaw S, Lehto NJ, Hassall L, Robinson BH. 2018. The mobility and plant uptake of gallium and indium, two emerging contaminants associated with electronic waste and other sources. Chemosphere 209:675−684

doi: 10.1016/j.chemosphere.2018.06.111
[5]

Robinson BH, Bañuelos G, Conesa HM, Evangelou MWH, Schulin R. 2009. The phytomanagement of trace elements in soil. Critical Reviews in Plant Sciences 28:240−266

doi: 10.1080/07352680903035424
[6]

Shaheen SM, Tsadilas CD, Rinklebe J. 2013. A review of the distribution coefficients of trace elements in soils: influence of sorption system, element characteristics, and soil colloidal properties. Advances in Colloid and Interface Science 201:43−56

doi: 10.1016/j.cis.2013.10.005
[7]

Tack FMG. 2010. Trace elements: general soil chemistry, principles and processes. In Trace Elements in Soils, ed. Hooda PS. Oxford: Blackwell Publishing Ltd. pp. 9−37 doi: 10.1002/9781444319477.ch2

[8]

Basta NT, Ryan JA, Chaney RL. 2005. Trace element chemistry in residual-treated soil: key concepts and metal bioavailability. Journal of Environmental Quality 34:49−63

doi: 10.2134/jeq2005.0049dup
[9]

Carrillo-González R, Šimůnek J, Sauvé S, Adriano D. 2006. Mechanisms and pathways of trace element mobility in soils. Advances in Agronomy 91:111−178

doi: 10.1016/S0065-2113(06)91003-7
[10]

Sheppard MI, Sheppard SC, Grant CA. 2007. Solid/liquid partition coefficients to model trace element critical loads for agricultural soils in Canada. Canadian Journal of Soil Science 87:189−201

doi: 10.4141/S06-061
[11]

Antonkiewicz J, Jasiewicz C, Koncewicz-Baran M, Sendor R. 2016. Nickel bioaccumulation by the chosen plant species. Acta Physiologiae Plantarum 38:40

doi: 10.1007/s11738-016-2062-5
[12]

Larios R, Fernández-Martínez R, LeHecho I, Rucandio I. 2012. A methodological approach to evaluate arsenic speciation and bioaccumulation in different plant species from two highly polluted mining areas. Science of The Total Environment 414:600−607

doi: 10.1016/j.scitotenv.2011.09.051
[13]

Skála J, Vácha R, Čechmánková J. 2021. Identifying controlling factors of bioaccumulation of selected metal (loid) s in various soil – cereal crop systems within cultivated fluvisols. Agronomy 11:1180

doi: 10.3390/agronomy11061180
[14]

Qvarforth A, Svensson PA, Lundgren M, Rodushkin I, Engström E, et al. 2025. Geochemical insights into plant uptake of Technology-critical elements: a case study on lettuce from European soils. Chemosphere 371:144073

doi: 10.1016/j.chemosphere.2025.144073
[15]

Tyler G, Olsson T. 2002. Conditions related to solubility of rare and minor elements in forest soils. Journal of Plant Nutrition and Soil Science 165:594−601

doi: 10.1002/1522-2624(200210)165:5<594::AID-JPLN594>3.0.CO;2-K
[16]

Khan A, Khan S, Khan MA, Qamar Z, Waqas M. 2015. The uptake and bioaccumulation of heavy metals by food plants, their effects on plants nutrients, and associated health risk: a review. Environmental Science and Pollution Research 22:13772−13799

doi: 10.1007/s11356-015-4881-0
[17]

Tyler G. 2004. Ionic charge, radius, and potential control root/soil concentration ratios of fifty cationic elements in the organic horizon of a beech (Fagus sylvatica) forest podzol. Science of The Total Environment 329:231−239

doi: 10.1016/j.scitotenv.2004.03.004
[18]

Higley KA. 2010. Estimating transfer parameters in the absence of data. Radiation and Environmental Biophysics 49:645−656

doi: 10.1007/s00411-010-0326-9
[19]

Teppen BJ, Miller DM. 2006. Hydration energy determines isovalent cation exchange selectivity by clay minerals. Soil Science Society of America Journal 70:31−40

doi: 10.2136/sssaj2004.0212
[20]

York LM, Carminati A, Mooney SJ, Ritz K, Bennett MJ. 2016. The holistic rhizosphere: integrating zones, processes, and semantics in the soil influenced by roots. Journal of Experimental Botany 67:3629−3643

doi: 10.1093/jxb/erw108
[21]

Meychik N, Nikolaeva Y, Kushunina M. 2021. The significance of ion-exchange properties of plant root cell walls for nutrient and water uptake by plants. Plant Physiology and Biochemistry 166:140−147

doi: 10.1016/j.plaphy.2021.05.048
[22]

Hewitt AE. 2010. New Zealand soil classification. https://digitallibrary.landcareresearch.co.nz/digital/collection/p20022coll1/id/268

[23]

McLaren RG, Cameron KC. 1996. Soil science: sustainable production and environmental protection, 2nd Edition. Auckland, New Zealand: Oxford University Press. 340 pp

[24]

Reiser R, Simmler M, Portmann D, Clucas L, Schulin R, et al. 2014. Cadmium concentrations in New Zealand pastures: relationships to soil and climate variables. Journal of Environmental Quality 43:917−925

doi: 10.2134/jeq2013.09.0367
[25]

Thompson-Morrison H, Ariantiningsih F, Arief SM, Gaw S, Robinson B. 2024. Chemical elements in Elaeis guineensis materials and derived oil. Scientific Reports 14:1836

doi: 10.1038/s41598-023-50492-8
[26]

Thompson-Morrison H, Ariantiningsih F, Arief SM, Gaw S, Robinson B. 2023. Nutrients and contaminants in soils of current and former oil palm production systems from Indonesia. Land 12:2144

doi: 10.3390/land12122144
[27]

NIST. 2003. Certificate of analysis: standard reference material 2710 Montana soil. National Institute of Standards & Technology, Gaithersburg, MA, USA

[28]

NIST. 2018. Certificate of analysis: standard reference material 2706 New Jersey soil. National Institute of Standards & Technology, Gaithersburg, MA, USA

[29]

Persson I. 2010. Hydrated metal ions in aqueous solution: how regular are their structures? Pure and Applied Chemistry 82:1901−1917

doi: 10.1351/pac-con-09-10-22
[30]

de Almeida KJ, Murugan NA, Rinkevicius Z, Hugosson HW, Vahtras O, et al. 2009. Conformations, structural transitions and visible near-infrared absorption spectra of four-, five-and six-coordinated Cu (II) aqua complexes. Physical Chemistry Chemical Physics 11:508−519

doi: 10.1039/B806423G
[31]

Rudolph WW, Irmer G. 2020. On the hydration of the rare earth ions in aqueous solution. Journal of Solution Chemistry 49:316−331

doi: 10.1007/s10953-020-00960-w
[32]

Loeffler HH, Rode BM. 2002. The hydration structure of the lithium ion. The Journal of Chemical Physics 117:110−117

doi: 10.1063/1.1480875
[33]

Schwertmann U. 1991. Solubility and dissolution of iron oxides. Plant and Soil 130:1−25

doi: 10.1007/BF00011851
[34]

Sauvé S, McBride MB, Norvell WA, Hendershot WH. 1997. Copper solubility and speciation of in situ contaminated soils: effects of copper level, pH and organic matter. Water, Air, and Soil Pollution 100:133−149

doi: 10.1023/A:1018312109677
[35]

Shannon RD. 1976. Revised effective ionic radii and systematic studies of interatomic distances in halides and chalcogenides. Acta Crystallographica Section A 32:751−767

doi: 10.1107/S0567739476001551
[36]

Trzaskowski B, Les A, Adamowicz L. 2003. Modelling of octahedral manganese II complexes with inorganic ligands: a problem with spin-states. International Journal of Molecular Sciences 4:503−511

doi: 10.3390/i4080503
[37]

Shin JW, Jeong AR, Jeong JH, Zenno H, Hayami S, et al. 2020. Two-dimensional square-grid iron(II) coordination polymers showing anion-dependent spin crossover behavior. RSC Advances 10:5040−5049

doi: 10.1039/C9RA09782A
[38]

Evans DR, Reed CA. 2000. Reversal of H2O and OH-ligand field strength on the magnetochemical series relative to the spectrochemical series. Novel 1-equiv water chemistry of iron (III) tetraphenylporphyrin complexes. Journal of the American Chemical Society 122:4660−4667

doi: 10.1021/ja994478i
[39]

Schmiedekamp AM, Ryan MD, Deeth RJ. 2002. Six-coordinate Co2+ with H2O and NH3 ligands: which spin state is more stable? Inorganic Chemistry 41:5733−5743

doi: 10.1021/ic0257930
[40]

Volkov AG, Paula S, Deamer DW. 1997. Two mechanisms of permeation of small neutral molecules and hydrated ions across phospholipid bilayers. Bioelectrochemistry and Bioenergetics 42:153−160

doi: 10.1016/S0302-4598(96)05097-0
[41]

Hanafi A. 2010. Adsorption of cesium, thallium, strontium and cobalt radionuclides using activated carbon. Journal of Atomic and Molecular Sciences 1:292−300

doi: 10.4208/jams.100809.112309a
[42]

Tansel B. 2012. Significance of thermodynamic and physical characteristics on permeation of ions during membrane separation: hydrated radius, hydration free energy and viscous effects. Separation and Purification Technology 86:119−126

doi: 10.1016/j.seppur.2011.10.033
[43]

Poschenrieder C, Busoms S, Barceló J. 2019. How plants handle trivalent (+ 3) elements. International Journal of Molecular Sciences 20:3984

doi: 10.3390/ijms20163984
[44]

Sheppard SC, Long JM, Sanipelli B. 2010. Plant/soil concentration ratios for paired field and garden crops, with emphasis on iodine and the role of soil adhesion. Journal of Environmental Radioactivity 101:1032−1037

doi: 10.1016/j.jenvrad.2010.08.001
[45]

Sheppard S, Sohlenius G, Omberg LG, Borgiel M, Grolander S, et al. 2011. Solid/liquid partition coefficients (Kd) and plant/soil concentration ratios (CR) for selected soils, tills and sediments at Forsmark. Swedish: Swedish Nuclear Fuel and Waste Management Co. 74 pp

[46]

Sheppard SC, Evenden WG. 1990. Characteristics of plant concentration ratios assessed in a 64-site field survey of 23 elements. Journal of Environmental Radioactivity 11:15−36

doi: 10.1016/0265-931X(90)90041-S
[47]

Ribeiro PG, de Oliveira C, Guerra MBB, de Carvalho TS, Martins GC, et al. 2024. Rare earths as emerging trace element contaminants in the soil. Current Pollution Reports 10:443−458

doi: 10.1007/s40726-024-00312-y
[48]

Gutiérrez del Pozo D, Martín-Gómez JJ, Tocino Á, Cervantes E. 2020. Seed geometry in the Arecaceae. Horticulturae 6:64

doi: 10.3390/horticulturae6040064
[49]

Rengel Z. 1993. Mechanistic simulation models of nutrient uptake: a review. Plant and Soil 152:161−173

doi: 10.1007/BF00029086
[50]

Thompson-Morrison H, Moltchanova E, Gaw S, Robinson B. 2024. Development and use of a mass-balance model to calculate the likely effects of agrichemicals on trace element accumulation in soils supporting palm oil production. Soil Use and Management 40:e12935

doi: 10.1111/sum.12935