[1]

Younas F, Younas S, Bibi I, Farooqi ZUR, Hameed MA, et al. 2024. A critical review on the separation of heavy metal(loid)s from the contaminated water using various agricultural wastes. International Journal of Phytoremediation 26:349−368

doi: 10.1080/15226514.2023.2242973
[2]

Alloway BJ. 2013. Heavy Metals in Soils: Trace Metals and Metalloids in Soils and Their Bioavailability. Dordrecht: Springer Netherlands. doi: 10.1007/978-94-007-4470-7

[3]

Tchounwou PB, Yedjou CG, Patlolla AK, Sutton DJ. 2012. Heavy metal toxicity and the environment. In Molecular, Clinical and Environmental Toxicology: Volume 3: Environmental Toxicology, ed. Luch A. Basel: Springer. pp. 133−164 doi: 10.1007/978-3-7643-8340-4_6

[4]

Zhao FJ, Tang Z, Song JJ, Huang XY, Wang P. 2022. Toxic metals and metalloids: uptake, transport, detoxification, phytoremediation, and crop improvement for safer food. Molecular Plant 15:27−44

doi: 10.1016/j.molp.2021.09.016
[5]

Shaheen SM, Antoniadis V, Kwon E, Song H, Wang SL, et al. 2020. Soil contamination by potentially toxic elements and the associated human health risk in geo-and anthropogenic contaminated soils: a case study from the temperate region (Germany) and the arid region (Egypt). Environmental Pollution 262:114312

doi: 10.1016/j.envpol.2020.114312
[6]

Kar S. 2022. Geochemical characteristics of mineral elements: arsenic, fluorine, lead, nitrogen, and carbon. In Structure and Functions of Pedosphere. eds. Giri B, Kapoor R, Wu QS, Varma A. Singapore: Springer Nature Singapore. pp. 209−254 doi: 10.1007/978-981-16-8770-9_10

[7]

Piwowarska D, Kiedrzyńska E, Jaszczyszyn K. 2024. A global perspective on the nature and fate of heavy metals polluting water ecosystems, and their impact and remediation. Critical Reviews in Environmental Science and Technology 54:1436−1458

doi: 10.1080/10643389.2024.2317112
[8]

Sultana A, Wang Q, Suzuki M, Enyoh CE, Rana MS, et al. 2025. Heavy metal contamination in homestead agricultural soils of Bangladesh: industrial influence, human exposure and ecological risk assessment. Soil Systems 9:136

doi: 10.3390/soilsystems9040136
[9]

Sfetsas T, Ghoghoberidze S, Karnoutsos P, Tziakas V, Karagiovanidis M, et al. 2024. Spatial and temporal patterns of trace element deposition in urban Thessaloniki: a Syntrichia moss biomonitoring study. Atmosphere 15(11):1378

doi: 10.3390/atmos15111378
[10]

Yap CK, Tan WS, Cheng WH, Syazwan WM, Azrizal-Wahid N, et al. 2022. Ecological–health risk of antimony and arsenic in Centella asiatica, topsoils, and mangrove sediments: a case study of Peninsular Malaysia. Frontiers in Environmental Science 10:939860

doi: 10.3389/fenvs.2022.939860
[11]

Bundschuh J, Armienta MA, Morales-Simfors N, Alam MA, López DL, et al. 2021. Arsenic in Latin America: new findings on source, mobilization and mobility in human environments in 20 countries based on decadal research 2010−2020. Critical Reviews in Environmental Science and Technology 51:1727−1865

doi: 10.1080/10643389.2020.1770527
[12]

Qu F, Zheng W. 2024. Cadmium exposure: mechanisms and pathways of toxicity and implications for human health. Toxics 12:388

doi: 10.3390/toxics12060388
[13]

Zheng T, Zhou Q, Tao Z, Ouyang S. 2023. Magnetic iron-based nanoparticles biogeochemical behavior in soil-plant system: a critical review. Science of The Total Environment 904:166643

doi: 10.1016/j.scitotenv.2023.166643
[14]

Bashir H, Niazi NK, Ahmad Saqib Z, Hussain K. 2025. Chromium removal by biochar/nanoparticulate iron oxide mineral composites: mechanistic insights and performance under batch and column systems. International Journal of Phytoremediation 27:1822−1832

doi: 10.1080/15226514.2025.2522303
[15]

Abubakar US. 2024. Copper and lead as environmental pollutant and their elemental toxicity – a review. Science World Journal 19:342−346

doi: 10.4314/swj.v19i2.8
[16]

Lv Y, Wang Y, Zhang C, Wu C, Xu X, et al. 2024. The impact of cobalt species on the hazardous characteristics of cobalt-leaching residue: a case study from Guangdong Province, China. Water 16:2953

doi: 10.3390/w16202953
[17]

Zhong M, Wang Y, Min J, Wang F. 2025. Iron metabolism and ferroptosis in human health and disease. BMC Biology 23:263

doi: 10.1186/s12915-025-02378-6
[18]

Shvachiy L, Geraldes V, Outeiro TF. 2023. Uncovering the molecular link between lead toxicity and Parkinson's disease. Antioxidants & Redox Signaling 39:321−335

doi: 10.1089/ars.2022.0076
[19]

Wang S, Wei L, Zhang L, Shehzad MT, Hameed MA, et al. 2025. Tillage-regulated impacts of engineered Fe/Zn-humic complexes on lead toxicity and soil biochemical health. International Journal of Phytoremediation 1−12

doi: 10.1080/15226514.2025.2579150
[20]

Oskarsson A, Kippler M. 2023. Molybdenum – a scoping review for Nordic nutrition recommendations 2023. Food & Nutrition Research 67:10326

doi: 10.29219/fnr.v67.10326
[21]

Wu YS, Osman AI, Hosny M, Elgarahy AM, Eltaweil AS, et al. 2024. The toxicity of mercury and its chemical compounds: molecular mechanisms and environmental and human health implications: a comprehensive review. ACS Omega 9:5100−5126

doi: 10.1021/acsomega.3c07047
[22]

Liu Y, Luo X, Peng Y, Cai L. 2025. Cardio-metabolic effects of nickel: a narrative review. Cardiovascular Toxicology 25:944−954

doi: 10.1007/s12012-025-10014-6
[23]

Wnuk E. 2023. Mobility, bioavailability, and toxicity of vanadium regulated by physicochemical and biological properties of the soil. Journal of Soil Science and Plant Nutrition 23:1386−1396

doi: 10.1007/s42729-023-01130-9
[24]

Asare MO, Afriyie JO. 2021. Ancient mining and metallurgy as the origin of Cu, Ag, Pb, Hg, and Zn contamination in soils: a review. Water, Air, & Soil Pollution 232:240

doi: 10.1007/s11270-021-05166-4
[25]

Kung HC, Wu CH, Huang BW, Chang-Chien GP, Mutuku JK, et al. 2024. Mercury abatement in the environment: insights from industrial emissions and fates in the environment. Heliyon 10:e28253

doi: 10.1016/j.heliyon.2024.e28253
[26]

Alengebawy A, Abdelkhalek ST, Qureshi SR, Wang MQ. 2021. Heavy metals and pesticides toxicity in agricultural soil and plants: ecological risks and human health implications. Toxics 9:42

doi: 10.3390/toxics9030042
[27]

Qadir A, Hameed MA, Zafar MSB, Farooqi ZUR, Younas F, et al. 2021. Phytoremediation of inorganic pollutants: an eco-friendly approach, its types and mechanisms. Plant and Environment 1:110−130

[28]

Yuan T, Wei S, Yang W, Wang S, Hussain MM. 2025. Role of exogenous organic materials in enhancing BC/ZVI-mediated chromium immobilization via microbial and geochemical transformation. Earth Systems and Environment 1−15

doi: 10.1007/s41748-025-00797-7
[29]

Yao C, Yang Y, Li C, Shen Z, Li J, et al. 2024. Heavy metal pollution in agricultural soils from surrounding industries with low emissions: assessing contamination levels and sources. Science of The Total Environment 917:170610

doi: 10.1016/j.scitotenv.2024.170610
[30]

Rodriguez-Freire L, Avasarala S, Ali AS, Agnew D, Hoover JH, et al. 2016. Post Gold King Mine spill investigation of metal stability in water and sediments of the Animas River watershed. Environmental Science & Technology 50:11539−11548

doi: 10.1021/acs.est.6b03092
[31]

Prakash P, Smitha Chandran S. 2023. Nano-phytoremediation of heavy metals from soil: a critical review. Pollutants 3:360−380

doi: 10.3390/pollutants3030025
[32]

Wang S, Hussain MM. 2026. Chapter 7 − Degradation of engineered nanoparticles in soils and water. In Adsorption and Degradation of Emerging Contaminants in Soils and Water, eds. Gao B, Lu J. Elsevier. Amsterdam: Elsevier. pp. 247−271 doi: 10.1016/B978-0-443-33046-9.00001-9

[33]

Albalawi F, Hussein MZ, Fakurazi S, Masarudin MJ. 2021. Engineered nanomaterials: the challenges and opportunities for nanomedicines. International Journal of Nanomedicine 16:161−184

doi: 10.2147/IJN.S288236
[34]

Dhanapal AR, Thiruvengadam M, Vairavanathan J, Venkidasamy B, Easwaran M, Ghorbanpour M. 2024. Nanotechnology approaches for the remediation of agricultural polluted soils. ACS Omega 9:13522−13533

doi: 10.1021/acsomega.3c09776
[35]

Yang M, Zhang X, Sun Y. 2024. Remediation of Cr(VI) polluted groundwater using zero-valent iron composites: preparation, modification, mechanisms, and environmental implications. Molecules 29:5697

doi: 10.3390/molecules29235697
[36]

Bradford SA, Shen C, Kim H, Letcher RJ, Rinklebe J, et al. 2022. Environmental applications and risks of nanomaterials: an introduction to CREST publications during 2018–2021. Critical Reviews in Environmental Science and Technology 52:3753−3762

doi: 10.1080/10643389.2021.2020425
[37]

Abbas Q, Yousaf B, Ullah H, Ali MU, Ok YS, et al. 2020. Environmental transformation and nano-toxicity of engineered nano-particles (ENPs) in aquatic and terrestrial organisms. Critical Reviews in Environmental Science and Technology 50:2523−2581

doi: 10.1080/10643389.2019.1705721
[38]

Adeleye AS, Conway JR, Garner K, Huang Y, Su Y, et al. 2016. Engineered nanomaterials for water treatment and remediation: costs, benefits, and applicability. Chemical Engineering Journal 286:640−662

doi: 10.1016/j.cej.2015.10.105
[39]

Ahmed B, Rizvi A, Ali K, Lee J, Zaidi A, et al. 2021. Nanoparticles in the soil–plant system: a review. Environmental Chemistry Letters 192:1545−1609

doi: 10.1007/s10311-020-01138-y
[40]

Joudeh N, Linke D. 2022. Nanoparticle classification, physicochemical properties, characterization, and applications: a comprehensive review for biologists. Journal of Nanobiotechnology 20:262

doi: 10.1186/s12951-022-01477-8
[41]

Farooqi ZUR, Qadeer A, Hussain MM, Zeeshan N, Ilic P. 2021. Chapter 5 − Characterization and physicochemical properties of nanomaterials. In Nanomaterials: Synthesis, Characterization, Hazards and Safety, eds. Tahir MB, Sagir M, Asiri AM. Amsterdam: Elsevier. pp. 97−121 doi: 10.1016/B978-0-12-823823-3.00005-7

[42]

Yang Z, Shen J. 2025. A review: metal and metal oxide nanoparticles for environmental applications. Nanoscale 17:15068−15085

doi: 10.1039/D5NR01973G
[43]

Qureashi A, Bashir A, Nazir I, Ahmad Ganaie F, Fatima K, et al. 2025. Magnetically recoverable hybrid materials for electrochemical monitoring of hazardous contaminants: a review. RSC Sustainability 3:5410−5432

doi: 10.1039/d5su00457h
[44]

Phenrat T, Saleh N, Sirk K, Kim HJ, Tilton RD, et al. 2008. Stabilization of aqueous nanoscale zerovalent iron dispersions by anionic polyelectrolytes: adsorbed anionic polyelectrolyte layer properties and their effect on aggregation and sedimentation. Journal of Nanoparticle Research 10:795−814

doi: 10.1007/s11051-007-9315-6
[45]

Zhu X, Blanco E, Bhatti M, Borrion A. 2025. Mitigating overload-induced stress in anaerobic digestion: long-term performance and fate of nano magnetite additives. Water Research 286:124241

doi: 10.1016/j.watres.2025.124241
[46]

Ahuja R, Kalia A, Sikka R, Chaitra P. 2022. Nano modifications of biochar to enhance heavy metal adsorption from wastewaters: a review. ACS Omega 7:45825−45836

doi: 10.1021/acsomega.2c05117
[47]

Kleber M, Bourg IC, Coward EK, Hansel CM, Myneni SCB, et al. 2021. Dynamic interactions at the mineral–organic matter interface. Nature Reviews Earth & Environment 2:402−421

doi: 10.1038/s43017-021-00162-y
[48]

Pikula K, Ali Johari S, Golokhvast K. 2022. Colloidal behavior and biodegradation of engineered carbon-based nanomaterials in aquatic environment. Nanomaterials 12:4149

doi: 10.3390/nano12234149
[49]

Chandran DG, Muruganandam L, Biswas R. 2023. A review on adsorption of heavy metals from wastewater using carbon nanotube and graphene-based nanomaterials. Environmental Science and Pollution Research 30:110010−110046

doi: 10.1007/s11356-023-30192-6
[50]

Roushani M, Ali NM, Karazan ZM, Nasibipour M, Hoseini SJ. 2024. Electrochemical sensing of Pb2+, Cu2+, and Hg2+ by an aminoclay-based porous covalent organic polymer/multi-walled carbon nanotubes modified glassy carbon electrode. Journal of Molecular Structure 1312:138602

doi: 10.1016/j.molstruc.2024.138602
[51]

Li B, Zhang Z, Liu T, Qiu Z, Su Y, et al. 2022. Recent progress in functionalized coatings for corrosion protection of magnesium alloys − a review. Materials 15:3912

doi: 10.3390/ma15113912
[52]

Ghosh S, Saha D, Baruah S, Mookerjee A, Mitra AK, et al. 2024. Harnessing carbon nanomaterials: applications and innovations. In Carbon-Based Materials and Environmental Remediation: Graphene, Biochar, and More, eds. Nirmala N, Arun J, Dawn S. IGI Global Scientific Publishing. pp. 1−36 doi: 10.4018/979-8-3693-8257-8.ch001

[53]

Zhu Y, Chen S, Li Z, Li H, Shaban M, et al. 2025. Nanoscale zero-valent iron composites for uranium-contaminated water treatment and environmental remediation: a review. Environmental Science: Nano 12:20−40

doi: 10.1039/D4EN00613E
[54]

Hwang ET, Gu MB. 2013. Enzyme stabilization by nano/microsized hybrid materials. Engineering in Life Sciences 13:49−61

doi: 10.1002/elsc.201100225
[55]

Naseem T, Bibi F, Arif S, Waseem M, Haq S, et al. 2022. Adsorption and kinetics studies of Cr(VI) by graphene oxide and reduced graphene oxide-zinc oxide nanocomposite. Molecules 27:7152

doi: 10.3390/molecules27217152
[56]

Zhang Y, Zhang N, Tang ZR, Xu YJ. 2012. Graphene transforms wide band gap ZnS to a visible light photocatalyst. The new role of graphene as a macromolecular photosensitizer. ACS Nano 6:9777−9789

doi: 10.1021/nn304154s
[57]

Gopinath KP, Madhav NV, Krishnan A, Malolan R, Rangarajan G. 2020. Present applications of titanium dioxide for the photocatalytic removal of pollutants from water: a review. Journal of Environmental Management 270:110906

doi: 10.1016/j.jenvman.2020.110906
[58]

Baig N, Kammakakam I, Falath W. 2021. Nanomaterials: a review of synthesis methods, properties, recent progress, and challenges. Materials advances 2:1821−1871

doi: 10.1039/d0ma00807a
[59]

Del Prado-Audelo ML, Kerdan IG, Escutia-Guadarrama L, Reyna-González JM, Magaña JJ, et al. 2021. Nanoremediation: nanomaterials and nanotechnologies for environmental cleanup. Frontiers in Environmental Science 9:793765

doi: 10.3389/fenvs.2021.793765
[60]

Wang H, Li YF, Dou M, Yang G, Yang R, et al. 2025. Visible-light driven S-scheme Bi2WO6/graphitic carbon nitride heterojunction for efficient simultaneous removal of TC and Cr(VI). Journal of Alloys and Compounds 1010:177669

doi: 10.1016/j.jallcom.2024.177669
[61]

Leong SS, Ahmad Z, Low SC, Camacho J, Faraudo J, et al. 2020. Unified view of magnetic nanoparticle separation under magnetophoresis. Langmuir 36:8033−8055

doi: 10.1021/acs.langmuir.0c00839
[62]

Roy A, Sharma A, Yadav S, Jule LT, Krishnaraj R. 2021. Nanomaterials for remediation of environmental pollutants. Bioinorganic Chemistry and Applications 2021:1764647

doi: 10.1155/2021/1764647
[63]

Qasem NAA, Mohammed RH, Lawal DU. 2021. Removal of heavy metal ions from wastewater: a comprehensive and critical review. npj Clean Water 4:36

doi: 10.1038/s41545-021-00127-0
[64]

Olawade DB, Wada OZ, Egbewole BI, Fapohunda O, Ige AO, et al. 2024. Metal and metal oxide nanomaterials for heavy metal remediation: novel approaches for selective, regenerative, and scalable water treatment. Frontiers in Nanotechnology 6:1466721

doi: 10.3389/fnano.2024.1466721
[65]

Fan D, Peng Y, He X, Ouyang J, Fu L, et al. 2024. Recent progress on the adsorption of heavy metal ions Pb(II) and Cu(II) from wastewater. Nanomaterials 14:1037

doi: 10.3390/nano14121037
[66]

Guo T, Bulin C, Ma Z, Li B, Zhang Y, et al. 2021. Mechanism of Cd(II) and Cu(II) adsorption onto few-layered magnetic graphene oxide as an efficient adsorbent. ACS Omega 6:16535−16545

doi: 10.1021/acsomega.1c01770
[67]

Velusamy S, Roy A, Sundaram S, Kumar Mallick T. 2021. A review on heavy metal ions and containing dyes removal through graphene oxide-based adsorption strategies for textile wastewater treatment. The Chemical Record 21:1570−1610

doi: 10.1002/tcr.202000153
[68]

Salama E, Samy M, Shokry H, El-Subruiti G, El-Sharkawy A, et al. 2022. The superior performance of silica gel supported nano zero-valent iron for simultaneous removal of Cr(VI). Scientific Reports 12:22443

doi: 10.1038/s41598-022-26612-1
[69]

Rodríguez-Rasero C, Montes-Jimenez V, Alexandre-Franco MF, Fernández-González C, Píriz-Tercero J, et al. 2024. Use of zero-valent iron nanoparticles (nZVIs) from environmentally friendly synthesis for the removal of dyes from water − a review. Water 16:1607

doi: 10.3390/w16111607
[70]

Sun P, Wang Z, An S, Zhao J, Yan Y, et al. 2022. Biochar-supported nZVI for the removal of Cr(VI) from soil and water: advances in experimental research and engineering applications. Journal of Environmental Management 316:115211

doi: 10.1016/j.jenvman.2022.115211
[71]

Dan-Iya BI, Khan A, Shukor MYA, Sabullah M, Masdor NA. 2023. Zero-valent iron nanoparticles for environmental Hg(II) removal: a review. PeerJ Materials Science 5:e29

doi: 10.7717/peerj-matsci.29
[72]

Gao X, Meng X. 2021. Photocatalysis for heavy metal treatment: a review. Processes 9:1729

doi: 10.3390/pr9101729
[73]

Dehghani MT, Delnavaz M. 2024. UV-light-responsive Ag/TiO2/PVA nanocomposite for photocatalytic degradation of Cr, Ni, Zn, and Cu heavy metal ions. Scientific Reports 14:5195

doi: 10.1038/s41598-024-56059-5
[74]

Lowry GV, Gregory KB, Apte SC, Lead JR. 2012. Transformations of nanomaterials in the environment. Environmental Science & Technology 46(13):6893−6899

doi: 10.1021/es300839e
[75]

Li S, Wang W, Liang F, Zhang WX. 2017. Heavy metal removal using nanoscale zero-valent iron (nZVI): theory and application. Journal of Hazardous Materials 322:163−171

doi: 10.1016/j.jhazmat.2016.01.032
[76]

Hong J, Förstner U, Calmano W. 2024. Effects of redox processes on acid-producing potential and metal mobility in sediments. In Bioavailability: Physical, Chemical, and Biological Interactions. eds. Hamelink J, Landrum PF, Bergman H, Benson WH. Boca Raton: CRC Press. pp. 119−141 doi: 10.1201/9781003578895-11

[77]

Hawezy HJS, Qader AF, Omer RA, Ali LIA. 2025. Magnetic nanoparticles for efficient heavy metal removal: synthesis, adsorption capacity, and key experimental parameters. Reviews in Inorganic Chemistry 45:587−596

doi: 10.1515/revic-2024-0090
[78]

Peng W, Li H, Liu Y, Song S. 2017. A review on heavy metal ions adsorption from water by graphene oxide and its composites. Journal of Molecular Liquids 230:496−504

doi: 10.1016/j.molliq.2017.01.064
[79]

Sparks DL. 2003. Environmental Soil Chemistry. Cambridge, MA: Academic Press. doi: 10.1016/B978-0-12-656446-4.X5000-2

[80]

Li XQ, Elliott DW, Zhang WX. 2006. Zero-valent iron nanoparticles for abatement of environmental pollutants: materials and engineering aspects. Critical Reviews in Solid State and Materials Sciences 31:111−122

doi: 10.1080/10408430601057611
[81]

Lead JR, Batley GE, Alvarez PJJ, Croteau MN, Handy RD, et al. 2018. Nanomaterials in the environment: behavior, fate, bioavailability, and effects − an updated review. Environmental Toxicology and Chemistry 37:2029−2063

doi: 10.1002/etc.4147
[82]

Phenrat T, Saleh N, Sirk K, Tilton RD, Lowry GV. 2007. Aggregation and sedimentation of aqueous nanoscale zerovalent iron dispersions. Environmental Science & Technology 41:284−290

doi: 10.1021/es061349a
[83]

Stefaniuk M, Oleszczuk P, Ok YS. 2016. Review on nano zerovalent iron (nZVI): from synthesis to environmental applications. Chemical Engineering Journal 287:618−632

doi: 10.1016/j.cej.2015.11.046
[84]

Baragaño D, Gallego JLR, Menéndez-Aguado JM, Marina MA, Sierra C. 2021. As sorption onto Fe-based nanoparticles and recovery from soils by means of wet high intensity magnetic separation. Chemical Engineering Journal 408:127325

doi: 10.1016/j.cej.2020.127325
[85]

Karnwal A, Malik T. 2024. Nano-revolution in heavy metal removal: engineered nanomaterials for cleaner water. Frontiers in Environmental Science 12:1393694

doi: 10.3389/fenvs.2024.1393694
[86]

Alazaiza MYD, Albahnasawi A, Copty NK, Bashir MJK, Nassani DE, et al. 2022. Nanoscale zero-valent iron application for the treatment of soil, wastewater and groundwater contaminated with heavy metals: a review. Desalination and Water Treatment 253:194−210

doi: 10.5004/dwt.2022.28302
[87]

Umejuru EC, Mashifana T, Kandjou V, Amani-Beni M, Sadeghifar H, et al. 2023. Application of zeolite based nanocomposites for wastewater remediation: evaluating newer and environmentally benign approaches. Environmental Research 231:116073

doi: 10.1016/j.envres.2023.116073
[88]

Wei S, Du G, Li C, Zhang L, Li J, et al. 2024. Removal mechanism of Pb(II) from soil by biochar-supported nanoscale zero-valent iron composite materials. RSC Advances 14:18148−18160

doi: 10.1039/D4RA03357D
[89]

Mounier L, Pédrot M, Bouhnik-Le-Coz M, Cabello-Hurtado F. 2023. Impact of iron oxide nanoparticles on a lead-polluted water–soil–plant system under alternating periods of water stress. Environmental Science: Advances 2:767−779

doi: 10.1039/D2VA00283C
[90]

Wang X, Xie H, Wang P, Yin H. 2023. Nanoparticles in plants: uptake, transport and physiological activity in leaf and root. Materials 16:3097

doi: 10.3390/ma16083097
[91]

Kolluru SS, Agarwal S, Sireesha S, Sreedhar I, Kale SR. 2021. Heavy metal removal from wastewater using nanomaterials-process and engineering aspects. Process Safety and Environmental Protection 150:323−355

doi: 10.1016/j.psep.2021.04.025
[92]

Li Y, Gong X. 2021. Effects of dissolved organic matter on the bioavailability of heavy metals during microbial dissimilatory iron reduction: a review. In Reviews of Environmental Contamination and Toxicology, Volume 257, ed. de Voogt P. Cham: Springer International Publishing. pp. 69−92 doi: 10.1007/398_2020_63

[93]

Delay M, Dolt T, Woellhaf A, Sembritzki R, Frimmel FH. 2011. Interactions and stability of silver nanoparticles in the aqueous phase: influence of natural organic matter (NOM) and ionic strength. Journal of Chromatography A 1218:4206−4212

doi: 10.1016/j.chroma.2011.02.074
[94]

Guo L, Nkoh Nkoh J, Xu RK. 2023. A critical review of the interactions of organic carbon components with soil minerals: insight from bibliometric analysis of the environmental behaviors of heavy metal(loid)s. Journal of Soils and Sediments 23:2396−2416

doi: 10.1007/s11368-023-03502-1
[95]

Gwenzi W, Chaukura N, Noubactep C, Mukome FND. 2017. Biochar-based water treatment systems as a potential low-cost and sustainable technology for clean water provision. Journal of Environmental Management 197:732−749

doi: 10.1016/j.jenvman.2017.03.087
[96]

Liang Y, Hilal N, Langston P, Starov V. 2007. Interaction forces between colloidal particles in liquid: theory and experiment. Advances in Colloid and Interface Science 134:151−166

doi: 10.1016/j.cis.2007.04.003
[97]

Gatou MA, Syrrakou A, Lagopati N, Pavlatou EA. 2024. Photocatalytic TiO2-based nanostructures as a promising material for diverse environmental applications: a review. Reactions 5:135−194

doi: 10.3390/reactions5010007
[98]

Asghar N, Hussain A, Nguyen DA, Ali S, Hussain I, et al. 2024. Advancement in nanomaterials for environmental pollutants remediation: a systematic review on bibliometrics analysis, material types, synthesis pathways, and related mechanisms. Journal of Nanobiotechnology 22:26

doi: 10.1186/s12951-023-02151-3
[99]

Liu M, Chen G, Xu L, He Z, Ye Y. 2024. Environmental remediation approaches by nanoscale zero valent iron (nZVI) based on its reductivity: a review. RSC Advances 14:21118−21138

doi: 10.1039/D4RA02789B
[100]

Altammar KA. 2023. A review on nanoparticles: characteristics, synthesis, applications, and challenges. Frontiers in Microbiology 14:1155622

doi: 10.3389/fmicb.2023.1155622
[101]

Riyazuddin R, Nisha N, Ejaz B, Khan MIR, Kumar M, et al. 2022. A comprehensive review on the heavy metal toxicity and sequestration in plants. Biomolecules 12:43

doi: 10.3390/biom12010043
[102]

Badamasi H, Aliyu Abdullahi U, Praveen Kumar A, Durumin Iya NI, Varra V, et al. 2025. Nanotechnology-assisted phytoremediation of heavy metal contaminated soils: a state-of-the-art review on recent progress, challenges, and future directions. Soil and Sediment Contamination: An International Journal 1−44

doi: 10.1080/15320383.2025.2536035
[103]

Yang J, Wang Y, Gao X, Zuo R, Song L, et al. 2022. Vanadium: a review of different extraction methods to evaluate bioavailability and speciation. Minerals 12:642

doi: 10.3390/min12050642
[104]

Nowack B, Baalousha M, Bornhöft N, Chaudhry Q, Cornelis G, et al. 2015. Progress towards the validation of modeled environmental concentrations of engineered nanomaterials by analytical measurements. Environmental Science: Nano 2:421−428

doi: 10.1039/C5EN00100E
[105]

Kah M, Tufenkji N, White JC. 2019. Nano-enabled strategies to enhance crop nutrition and protection. Nature Nanotechnology 14:532−540

doi: 10.1038/s41565-019-0439-5
[106]

Hansen SF, Michelson ES, Kamper A, Borling P, Stuer-Lauridsen F, et al. 2008. Categorization framework to aid exposure assessment of nanomaterials in consumer products. Ecotoxicology 17:438−447

doi: 10.1007/s10646-008-0210-4
[107]

Zhang L, Cui Y, Xu J, Qian J, Yang X, et al. 2024. Ecotoxicity and trophic transfer of metallic nanomaterials in aquatic ecosystems. Science of The Total Environment 924:171660

doi: 10.1016/j.scitotenv.2024.171660
[108]

Chávez-Hernández JA, Velarde-Salcedo AJ, Navarro-Tovar G, Gonzalez C. 2024. Safe nanomaterials: from their use, application, and disposal to regulations. Nanoscale Advances 6:1583−1610

doi: 10.1039/D3NA01097J
[109]

Roy M, Roy A, Rustagi S, Pandey N. 2023. An overview of nanomaterial applications in pharmacology. BioMed Research International 2023:4838043

doi: 10.1155/2023/4838043
[110]

Islam S. 2025. Toxicity and transport of nanoparticles in agriculture: effects of size, coating, and aging. Frontiers in Nanotechnology 7:1622228

doi: 10.3389/fnano.2025.1622228
[111]

Zhang R, Zheng X, Fan W, Wang X, Zhao T, et al. 2025. Fate models of nanoparticles in the environment: a critical review and prospects. Environmental Science: Nano 12:3394−3412

doi: 10.1039/D5EN00342C
[112]

Djibril Sekou K, Patel H. 2023. A review on the interaction between nanoparticles and toxic metals in soil: meta-analysis of their effects on soil, plants and human health. Soil and Sediment Contamination: An International Journal 32:417−447

doi: 10.1080/15320383.2022.2096564
[113]

Wang F, Zhou L, Mu D, Zhang H, Zhang G, et al. 2024. Current research on ecotoxicity of metal-based nanoparticles: from exposure pathways, ecotoxicological effects to toxicity mechanisms. Frontiers in Public Health 12:1390099

doi: 10.3389/fpubh.2024.1390099
[114]

Djanaguiraman M, Anbazhagan V, Dhankher OP, Vara Prasad PV. 2024. Uptake, translocation, toxicity, and impact of nanoparticles on plant physiological processes. Plants 13:3137

doi: 10.3390/plants13223137
[115]

Wang T, Liu W. 2022. Emerging investigator series: metal nanoparticles in freshwater: transformation, bioavailability and effects on invertebrates. Environmental Science: Nano 9:2237−2263

doi: 10.1039/D2EN00052K
[116]

Tran TK, Nguyen MK, Lin C, Hoang TD, Nguyen TC, et al. 2024. Review on fate, transport, toxicity and health risk of nanoparticles in natural ecosystems: emerging challenges in the modern age and solutions toward a sustainable environment. Science of The Total Environment 912:169331

doi: 10.1016/j.scitotenv.2023.169331
[117]

Devasena T, Iffath B, Kumar RR, Muninathan N, Baskaran K, et al. 2022. Insights on the dynamics and toxicity of nanoparticles in environmental matrices. Bioinorganic Chemistry and Applications 2022:4348149

doi: 10.1155/2022/4348149
[118]

Singh S, Prasad SM, Bashri G. 2023. Fate and toxicity of nanoparticles in aquatic systems. Acta Geochimica 42:63−76

doi: 10.1007/s11631-022-00572-9