| [1] |
Lyu P, Li L, Huang X, Wang G, Zhu C. 2022. Pre-magnetic bamboo biochar cross-linked Ca–Mg–Al layered double-hydroxide composite: high-efficiency removal of As(III) and Cd(II) from aqueous solutions and insight into the mechanism of simultaneous purification. |
| [2] |
Zhou S, Liu Z, Sun G, Zhang Q, Cao M, et al. 2022. Simultaneous reduction in cadmium and arsenic accumulation in rice (Oryza sativa L.) by iron/iron-manganese modified sepiolite. |
| [3] |
Adnan M, Xiao B, Xiao P, Zhao P, Li R, et al. 2022. Research progress on heavy metals pollution in the soil of smelting sites in China. |
| [4] |
Gong Y, Qu Y, Yang S, Tao S, Shi T, et al. 2020. Status of arsenic accumulation in agricultural soils across China (1985–2016). |
| [5] |
Sun S, Huang J, Wen J, Peng Z, Zhang N, et al. 2024. Sepiolite-supported nanoscale zero-valent iron alleviates Cd&As accumulation in rice by reducing Cd&As bioavailability in paddy soil and promoting Cd&As sequestration in iron plaque. |
| [6] |
Qiao JT, Liu TX, Wang XQ, Li FB, Lv YH, et al. 2018. Simultaneous alleviation of cadmium and arsenic accumulation in rice by applying zero-valent iron and biochar to contaminated paddy soils. |
| [7] |
Shen B, Wang X, Zhang Y, Zhang M, Wang K, et al. 2020. The optimum pH and Eh for simultaneously minimizing bioavailable cadmium and arsenic contents in soils under the organic fertilizer application. |
| [8] |
Huang BY, Zhao FJ, Wang P. 2022. The relative contributions of root uptake and remobilization to the loading of Cd and As into rice grains: implications in simultaneously controlling grain Cd and As accumulation using a segmented water management strategy. |
| [9] |
Vaňková Z, Vítková M, Trakal L, Seyedsadr S, Miller OA, et al. 2021. Soil moisture influences performance of selected stabilizing amendments in soil remediation. |
| [10] |
Zou R, Qian M, Wang C, Mateo W, Wang Y, et al. 2022. Biochar: from by-products of agro-industrial lignocellulosic waste to tailored carbon-based catalysts for biomass thermochemical conversions. |
| [11] |
Yang X, Li J, Liang T, Yan X, Zhong L, et al. 2021. A combined management scheme to simultaneously mitigate As and Cd concentrations in rice cultivated in contaminated paddy soil. |
| [12] |
Zhi M, Liu S, Hong Z, Wu N. 2014. Electrospun activated carbon nanofibers for supercapacitor electrodes. |
| [13] |
Tan XF, Liu SB, Liu YG, Gu YL, Zeng GM, et al. 2017. Biochar as potential sustainable precursors for activated carbon production: Multiple applications in environmental protection and energy storage. |
| [14] |
Zeng W, Lu Y, Zhou J, Zhang J, Duan Y, et al. 2024. Simultaneous removal of Cd(II) and As(V) by ferrihydrite-biochar composite: enhanced effects of As(V) on Cd(II) adsorption. |
| [15] |
Palansooriya KN, Shaheen SM, Chen SS, Tsang DCW, Hashimoto Y, et al. 2020. Soil amendments for immobilization of potentially toxic elements in contaminated soils: a critical review. |
| [16] |
Hong C, Dong Z, Zhang J, Zhu L, Che L, et al. 2022. Effectiveness and mechanism for the simultaneous adsorption of Pb(II), Cd(II) and As(III) by animal-derived biochar/ferrihydrite composite. |
| [17] |
Cui H, Bao B, Cao Y, Zhang S, Shi J, et al. 2022. Combined application of ferrihydrite and hydroxyapatite to immobilize soil copper, cadmium, and phosphate under flooding-drainage alternations. |
| [18] |
Liu C, Yu HY, Liu C, Li F, Xu X, et al. 2015. Arsenic availability in rice from a mining area: is amorphous iron oxide-bound arsenic a source or sink? |
| [19] |
Qu J, Yuan Y, Zhang X, Wang L, Tao Y, et al. 2022. Stabilization of lead and cadmium in soil by sulfur-iron functionalized biochar: performance, mechanisms and microbial community evolution. |
| [20] |
Du H, Nie N, Rao W, Lu L, Lei M, et al. 2021. Ferrihydrite–organo composites are a suitable analog for predicting Cd(II)–As(V) coexistence behaviors at the soil solid-liquid interfaces. |
| [21] |
Bai Z, Fan X, Meng F, Zhao Y, Song B, et al. 2022. Study on high-efficiency arsenic removal performance and mechanism of carbon-supported ferrihydrite adsorbent. |
| [22] |
Tian L, Liang Y, Lu Y, Peng L, Wu P, et al. 2018. Pb(II) and Cu(II) adsorption and desorption kinetics on ferrihydrite with different morphologies. |
| [23] |
Wu C, Shi L, Xue S, Li W, Jiang X, et al. 2019. Effect of sulfur-iron modified biochar on the available cadmium and bacterial community structure in contaminated soils. |
| [24] |
Rajendran M, Shi L, Wu C, Li W, An W, et al. 2019. Effect of sulfur and sulfur-iron modified biochar on cadmium availability and transfer in the soil–rice system. |
| [25] |
Yin Z, Liu N, Bian S, Li J, Xu S, et al. 2019. Enhancing the adsorption capability of areca leaf biochar for methylene blue by K2FeO4-catalyzed oxidative pyrolysis at low temperature. |
| [26] |
Qiao Y, Hou D, Lin Z, Wei S, Chen J, et al. 2023. Sulfur fertilization and water management ensure phytoremediation coupled with Argo-production by mediating rhizosphere microbiota in the Oryza sativa L.-Sedum alfredii Hance rotation system. |
| [27] |
Yang X, Dai Z, Ge C, Yu H, Bolan N, et al. 2023. Multiple-functionalized biochar affects rice yield and quality via regulating arsenic and lead redistribution and bacterial community structure in soils under different hydrological conditions. |
| [28] |
Ure AM, Quevauviller P, Muntau H, Griepink B. 1993. 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. |
| [29] |
Song Z, Liao R, Su X, Zhang X, Zhao Z, et al. 2023. Development of a novel three-dimensional biofilm-electrode system (3D-BES) loaded with Fe-modified biochars for enhanced pollutants removal in landfill leachate. |
| [30] |
Jiang M, Wang K, Li G, Zhao Q, Wang W, et al. 2023. Stabilization of arsenic, antimony, and lead in contaminated soil with montmorillonite modified by ferrihydrite: efficiency and mechanism. |
| [31] |
Liu Q, Chen Z, Chen Z, Pan X, Luo J, et al. 2023. Microbial community characteristics of cadmium speciation transformation in soil after iron-based materials application. |
| [32] |
Li Q, Ma X, Qi C, Li R, Zhang W, et al. 2022. Facile preparation of novel magnetic mesoporous Fe-Mn binary oxides from mn encapsulated carboxymethyl cellulose-Fe(III) hydrogel for antimony removal from water. |
| [33] |
Yang J, Shi X, Sun Z. 2025. Polyethylene glycol-enhanced CoFe alloy @biochar to boost Fenton-like reactions: a synergy of SO4·−, 1O2, Co(IV)/Fe(IV) and electron transfer. |
| [34] |
Yang S, Deng H, Mehta N, Zhu X, Wang H, et al. 2025. Pyrolysis temperature dependent electron mediating mechanisms of biochar for microbial reduction of Fe(III)-rich smectite. |
| [35] |
Li P, Lu H, Yang J, Li Q, Liu F, et al. 2025. Persulfate activation by sulfur-doped zero-valent iron @biochar for nitroaromatics removal: Coexisting oxidation and reduction processes. |
| [36] |
Zheng X, Wu Q, Huang C, Wang P, Cheng H, et al. 2023. Synergistic effect and mechanism of Cd(II) and As (III) adsorption by biochar supported sulfide nanoscale zero-valent iron. |
| [37] |
Chen X, Si T, Wang S, Yuan R, Bian R, et al. 2025. Enhancement of soil DOC and electron transport by biochar strengthens Cd immobilization via iron oxides transformations in waterlogged soils. |
| [38] |
Yang X, Yang F, Liu C, Sun H, Hou D, et al. 2025. Adsorption characteristics and mechanism insights of K2FeO4 coupling with ZnCl2-assisted modified functionalized biochar for Pb (II) in wastewater. |
| [39] |
Huang T, Imran I. 2025. Mitigating cadmium contamination in soil using Biochar, sulfur-modified Biochar, and other organic amendments. |
| [40] |
Ali Ahmad I, Hu H, Islam MS, Fu Q, Zhu J, et al. 2025. Simultaneous adsorption of cadmium and arsenic by goethite-modified rice straw-derived biochar in water and soil: interactive ion effects and co-adsorption mechanism. |
| [41] |
Wang M, Lai Y, Wang X, Zhang M, Han W, et al. 2025. Molecular insights into the simultaneous removal mechanisms of As(V) and Cd(II) in iron tailings slag-biochar composites. |
| [42] |
Giri PM, Parathasarathy P. 2025. Adsorption study on hexavalent chromium removal using magnetic biochar from Ziziphus jujube seed. |
| [43] |
Lin L, Zhang G, Liu X, Khan ZH, Qiu W, et al. 2019. Synthesis and adsorption of Fe-Mn-La-impregnated biochar composite as an adsorbent for As(III) removal from aqueous solutions. |
| [44] |
Yang F, Zhao L, Gao B, Xu X, Cao X. 2016. The interfacial behavior between biochar and soil minerals and its effect on biochar stability. |
| [45] |
Wang J, Huang J, Meng J, Pan G, Li Y, et al. 2025. Green synthesized nanoscale zero-valent iron impregnated tea residue biochar efficiently captures metal(loid)s for sustainable water remediation. |
| [46] |
Li X, Chen H, Rong K, Gao Q, Jin J, et al. 2025. Removal of aqueous As(V) by biochar stabilized green synthesized iron nanoparticles: optimization, mechanism and DFT insights. |
| [47] |
Lu Y, Zeng H, Lin H, Liang Y, Feng M, et al. 2024. Synergistic removal performance and mechanism of Cd(II) and As(III) from irrigation water by iron sulfide-based porous biochar. |
| [48] |
Hu X, Ding ZH, Zimmerman AR, Wang S, Gao B. 2015. Batch and column sorption of arsenic onto iron-impregnated biochar synthesized through hydrolysis. |
| [49] |
Nguyen DK, Ly-Tran QB, Dinh VP, Duong BN, Nguyen TPT, et al. 2024. Adsorption mechanism of aqueous Cr(vi) by Vietnamese corncob biochar: a spectroscopic study. |
| [50] |
Tran TK, Huynh L, Nguyen HL, Nguyen MK, Lin C, et al. 2024. Applications of engineered biochar in remediation of heavy metal(loid)s pollution from wastewater: current perspectives toward sustainable development goals. |
| [51] |
Cato E, Rossi A, Scherrer NC, Ferreira ESB. 2018. An XPS study into sulphur speciation in blue and green ultramarine. |
| [52] |
Zhang J, Huang D, Shao J, Zhang X, Zhang S, et al. 2022. A new nitrogen-enriched biochar modified by ZIF-8 grafting and annealing for enhancing CO2 adsorption. |
| [53] |
Ahmed MMM, Liao CH, Liu YT, Venkatesan S, Hsieh YC, et al. 2024. Sulfur-functionalized rice straw biochar for enhanced cadmium sorption: spectroscopic, kinetic and computational insights. |
| [54] |
Meng Z, Wu J, Huang S, Xin L, Zhao Q. 2024. Competitive adsorption behaviors and mechanisms of Cd, Ni, and Cu by biochar when coexisting with microplastics under single, binary, and ternary systems. |
| [55] |
Teng D, Zhang B, Xu G, Wang B, Mao K, et al. 2020. Efficient removal of Cd(II) from aqueous solution by pinecone biochar: sorption performance and governing mechanisms. |