Zemin Zhang, Jinhui Li, Wei Ding, Jie Yuan, Xia Chen
MgCl2-modified kiwifruit pomace biochar (MgBC) was synthesized and applied for Pb-(II) and Cd-(II) removal from water. The material exhibited a mesoporous structure (71.88 m2/g) and achieved high adsorption capacities of 604.70 mg/g for Pb-(II) and 304.98 mg/g for Cd-(II), with Langmuir maxima of 763.82 and 532.80 mg/g, respectively. In binary-metal systems, MgBC showed preferential Pb-(II) uptake, and Cd-(II) coexistence unexpectedly enhanced Pb-(II) adsorption. Density functional theory (DFT) and molecular dynamics (MD) simulations revealed three adsorption configurations: direct surface bonding (MgBC-Pb/Cd), hydroxyl-mediated interactions (MgBC-OPb/OCd) and defect-site occupation (MgBCPb/Cd). Adsorption energies followed MgBC-Pb (-2.93 kcal/mol) < MgBC-OPb (-2.57 kcal/mol) < MgBC-Cd (-1.09 kcal/mol) < MgBC-OCd (-0.08 kcal/mol) ≪ MgBCCd (298 kcal/mol) and MgBCPb (408 kcal/mol), which confirms chemisorption by direct and hydroxyl-assisted pathways as the dominant mechanisms with Pb-(II) being thermodynamically more favorable. Projected density of states (PDOS) analyses corroborated the adsorption capacity: MgBC-Pb > MgBC-OPb > MgBC-Cd > MgBC-OCd ≫ MgBCPb and MgBCCd. This work provides atomic-scale mechanistic insights and a sustainable strategy for converting agricultural waste into an effective biochar adsorbent for heavy metal removal.