[1] G.V. Motuzova, T.M. Minkina, E.A. Karpova, N.U. Barsova, S.S. Mandzhieva, Soil contamination with heavy metals as a potential and real risk to the environment, J. Geochem. Explor 144 (2014) 241–246. [2] A. Sebastian, M.N.V. Prasad, Cadmium minimization in rice: A review, Agron. Sustainable Dev 34 (2014) 155–173. [3] Y. Song, Y. Wang, W.F. Mao, H.X. Sui, L. Yong, D.J. Yang, D.G. Jiang, L. Zhang, Y.Y. Gong, Dietary cadmium exposure assessment among the Chinese population, Plos One 12 (5) (2017) e0177978. [4] Y.C. Wang, A. Li, C.W. Cui, Remediation of heavy metal-contaminated soils by electrokinetic technology: Mechanisms and applicability, Chemosphere 265 (2020) 129071. [5] M. Richer-Laflèche, Soil washing for metal removal: A review of physical/chemical technologies and field applications, J. Hazard. Mater. 152 (1) (2008) 1–31. [6] T.T. Qian, P. Wu, Q.Y. Qin, Y.N. Huang, Y. Jun, Screening of wheat straw biochars for the remediation of soils polluted with Zn (II) and Cd (II), J. Hazard. Mater. 362 (15) (2019) 311–317. [7] G.G.Qian, W. Chen, T.T. Lim, P.C. Chui, In-situ stabilization of Pb, Zn, Cu, Cd and Ni in the multi-contaminated sediments with ferrihydrite and apatite composite additives, J. Hazard. Mater. 170 (2–3) (2009) 1093–1100. [8] Y. X. Li, T.C. Xie, W.C. Du, Y. Yin, H.Y. Guo, Urea-enhanced phytoremediation of cadmium with willow in pyrene and cadmium contaminated soil, J. Hazard. Mater. 405 (2020) 124257. [9] Y. Hamid, Y. Tang, L. Sohail, M.I. Cao, X. R. Hussain, B. Aziz, M.Z. Usman, M. He, Z.L. Yang, An explanation of soil amendments to reduce cadmium phytoavailability and transfer to food chain, Sci. Total Environ 660 (10) (2019) 80–96. [10] N. Bolan, A. Kunhikrishnan, R. Thangarajan, J. Kumpiene, J. Park, T. Makino, M.B. Kirkham, K. Scheckel, Remediation of heavy metal(loid)s contaminated soils – To mobilize or to immobilize?, J. Hazard. Mater. 266 (15) (2014) 141–166. [11] W. Qian, J.Y. Liang, W.X. Zhang, S.T. Huang, Z.H. Diao, A porous biochar supported nanoscale zero-valent iron material highly efficient for the simultaneous remediation of cadmium and lead contaminated soil, J. Environ. Sci 113 (2022) 231–241. [12] L.Z. He, H. Zhong, G.X. Liu, Z.M. Dai, P.C. Brookes, J.M. Xu, Remediation of heavy metal contaminated soils by biochar: Mechanisms, potential risks and applications in China, Environ. Pollut 252 (2) (2019)846–855. [13] K. Liu, F.B. Li, Q.W. Tian, C.R. Nie, Y.B. Ma, Z.L. Zhu, L.P. Fang, Y.Y. Huang, S.W. Liu, A highly porous animal bone-derived char with a superiority of promoting nZVI for Cr(VI) sequestration in agricultural soils, J. Environ. Sci 104 (2020) 27–39. [14] M.Y. Jia, J.P. Yu, Z. Li, L.H. Wu, C. Peter, Effects of biochar on the migration and transformation of metal species in a highly acid soil contaminated with multiple metals and leached with solutions of different pH, Chemosphere 278 (2021) 130344. [15] B. Tang, P.H. Xu, F.M. Song, H.G. Ge, L. Chen, S.Y. Yue, W.S. Yang, Effect of biochar on immobilization remediation of Cdcontaminated soil and environmental quality, Environ. Res 204 (2022) 111840. [16] Y.G. Liu, X.J. Hu, X. Wang, X.F. Tan, G.M. Zeng, Guangming, Application of biochar for the removal of pollutants from aqueous solutions, Chemosphere 125 (2015) 70–85. [17] G. Lv, T. Yang, Y. Chen, H. Hou, X. Liu, J. Li, L. Wei, J.H. Li, Biochar-based fertilizer enhanced Cd immobilization and soil quality in soil-rice system, Ecol. Eng 171 (2021) 106396. [18] M.S. Islam, A.S.I.A. Magid, A. Y.l. Chen, L.P. Weng, J. Ma, Y.Arafat, Z.H. Khan, Y.T. Li, Effect of calcium and iron-enriched biochar on arsenic and accumulation from soil to rice paddy tissues, Sci. Total Environ 785 (2021) 147163. [19] F.F. Sui, J. Zuo, D. Chen, L.Q. Li, G.X. Pan, D.E. Crowley, Biochar effects on uptake of cadmium and lead by wheat in relation to annual precipitation: a 3-year field study, Environ. Sci. Pollut. Res 25 (3) (2018) 3368–3377. [20] Y.H. Zhao, L. Zhao, Y.Y. Mei, F.Y. Li, X.D. Cao, Release of nutrients and heavy metals from biochar-amended soil under environmentally relevant conditions, Environ. Sci. Pollut. Res 25 (10) (2017) 2517–2527. [21] Z.J. Li, H. Deng, L. Yang, G.L. Zhang, Y.Q. Li, Y.S. Ren, Influence of potassium hydroxide activation on characteristics and environmental risk of heavy metals in chars derived from municipal sewage sludge, Bioresour. Technol 256 (2018) 216–223. [22] H.B. Gong, Z.X. Tan, K. Huang, Y.Q. Zhou, Q.Y. Huang, Mechanism of cadmium removal from soil by silicate composite biochar and its recycling, J. Hazard. Mater. 409 (2021) 125022. [23] Y.Z. Xu, Z.Q. Fang, E.P. Tsang, In situ immobilization of cadmium in soil by stabilized biochar-supported iron phosphate nanoparticles, Environ Sci Pollut Res Int 23 (19) (2016) 19164–19172. [24] X.M. Wan, C.Y. Li, S.J. Parikh, Simultaneous removal of arsenic, cadmium, and lead from soil by iron-modified magnetic biochar, Environ. Pollut 261 (2020) 114157. [25] Y. Li, L. Li, J.H. Yu, Applications of Zeolites in Sustainable Chemistry, Chem. 3 (6) (2017) 928–949. [26] A. Mosa, A. El-Ghamry, M. Tolba, Biochar-supported natural zeolite composite for recovery and reuse of aqueous phosphate and humate: Batch sorption–desorption and bioassay investigations, Environ. Technol. Innovation 19 (2020) 100807. [27] M. Ahmad, A. Usman, A.S. Al-Faraj, A. Abduljabbar, S.O. Yong, M.I. Al-Wabel, Date palm waste-derived biochar composites with silica and zeolite: synthesis, characterization and implication for carbon stability and recalcitrant potential, Environ. Geochem. Health 41 (2017) 1–18. [28] Y. Fan, B. Wang, S.H. Yuan, X.H. Wu, J. Chen, L.L. Wang, Adsorptive removal of chloramphenicol from wastewater by NaOH modified bamboo charcoal, Bioresour. Technol 101 (19) (2010) 7661–7664. [29] S. Bashir, Q. Hussain, J. Zhu, Q.L. Fu, H. David, H.Q. Hu, Efficiency of KOH-modified rice straw-derived biochar for reducing cadmium mobility, bioaccessibility and bioavailability risk index in red soil, Pedosphere 30 (6) (2020) 874–882. [30] Y.Y. Wang, Y.X. Liu, H.H. Lu, R.Q. Yang, S.M. Yang, Competitive adsorption of Pb(II), Cu(II), and Zn(II) ions onto hydroxyapatite-biochar nanocomposite in aqueous solutions, J. Solid State Chem 261 (2018) 53–61. [31] P. Quevauviller, Certified reference materials for the quality control of environmental analysis within the standards, measurements and testing programme (formerly BCR), Microchim. Acta 123 (1996) 3–14. [32] A.M. Ure, P. Quevauviller, H. Muntau, B. Griepink, Speciation of heavy metals in soils and sediments. An account of the improvement and harmonization of extraction techniques undertaken under the auspices of the BCR of the Commission of the European Communities, J. Environ. Anal. Chem 51 (1–4) (1993) 135–151. [33] S. Lu, L.H. Zhang, K. Wang, L.J. Miao, Q.F. Lan, K.M. Jiang, H.M. Lu, M. Li, Y. Li, B. Shen, Analysis of oxidation degree of graphite oxide and chemical structure of corresponding reduced graphite oxide by selecting different-sized original graphite, RSC Adv 8 (31) (2018) 17209–17217. [34] E.S. Penido, L.A. Melo, L.G. Guilherme, M.L. Bianchi, Cadmium binding mechanisms and adsorption capacity by novel phosphorus/magnesium-engineered biochars, Sci. Total Environ 671 (2019) 1134–1143. [35] Y. Luo, J.T. Street, P.H. Steele, E.D. Entsminger, V.K. Guda, Activated carbon derived from pyrolyzed pinewood char using elevated temperature, KOH, H3PO4, and H2O2, ACS Sustainable Chem. Eng 11 (4) (2016) 10433–1047. [36] A. Herath, C.A. Layne, F. Perez, E.B. Hassan, T.E. Mlsna, KOH-activated high surface area Douglas Fir biochar for adsorbing aqueous Cr(VI), Pb(II) and Cd(II), Chemosphere 269 (2020) 128409. [37] M.B. Ahmed, J.L. Zhou, H.H. Ngo, W.S. Guo, M.F. Chen, Progress in the preparation and application of modified biochar for improved contaminant removal from water and wastewater, Bioresour. Technol 214 (2016) 836–851. [38] A. Rawal, S.D. Joseph, J.M. Hook, C.H. Chia, P.R. Munroe, S.W. Donne, Y. Lin, D. Phelan, D. Mitchell, B. Pace, Mineral-biochar composites: Molecular structure and porosity, Environ. Sci. Technol 14 (50) (2016) 7706–7714. [39] X.Y. Xu, X.D. Cao, L. Zhao, Comparison of rice husk- and dairy manure-derived biochars for simultaneously removing heavy metals from aqueous solutions: Role of mineral components in biochars, Chemosphere 92 (8) (2013) 955–961. [40] H.B. Bradl, Adsorption of heavy metal ions on soils and soils constituents, J. Colloid Interface Sci 277 (1) (2004) 1–18. [41] N. Zhao, B. Li, H.M. Huang, X.M. Lv, M.G. Zhang, L. Cao, Modification of kelp and sludge biochar by TMT-102 and NaOH for cadmium adsorption, J. Taiwan Inst. Chem. Eng 116 (2020) 101–111. [42] A. P. Puga, L.C.A. Melo, C.A. Abreu, A. R. Coscione, J. Paz-Ferreiro, Leaching and fractionation of heavy metals in mining soils amended with biochar, Soil Tillage Res 165 (2016) 24–33. [43] J.C. Yoo, C. Lee, J.S. Yang, K. Baek, Extraction characteristics of heavy metals from marine sediments, Chem. Eng. J 228 (15) (2013) 688–699. [44] X.D. Cao, W. Harris, Properties of dairy-manure-derived biochar pertinent to its potential use in remediation, Bioresour. Technol 101 (14) (2010) 5222–5228. [45] G.F. Wang, Y.Y. Hua, X. Su, S. Komarneni, S.J. Ma, Y.J. Wang, Cr(VI) adsorption by montmorillonite nanocomposites, Appl. Clay Sci 124–125 (2016) 111–118. [46] R. Katiyar, A.K. Patel, T.B. Nguyen, R.R. Singhania, C.W. Chen, C.D. Dong, Adsorption of Copper (II) in aqueous solution using biochars derived from Ascophyllum nodosum seaweed, Bioresour. Technol 328 (2021) 124829. [47] D. Chen, X.B. Wang, X.L. Wang, K. Feng, J.C. Su, J.N. Dong, The mechanism of cadmium sorption by s ulphur-modified wheat straw biochar and its application cadmium-contaminated soil, Sci. Total Environ 714 (2020) 136550. [48] P.Y. Liu, D. Rao, L.Y. Zou, Y. Teng, H.Y. Yu, Capacity and potential mechanisms of Cd(II) adsorption from aqueous solution by blue algae-derived biochars, Sci. Total Environ 767 (2021) 145447. [49] M.W. Ackley, S.U. Rege, H. Saxena, Application of natural zeolites in the purification and separation of gases, Microporous Mesoporous Mater 61 (1–3) (2003) 25–42. |