Archive/Synthesis, Performance, and Mechanism of Upcycled Lithium Slag-Based Geopolymers for High-Capacity Pb(II) Elimination
Synthesis, Performance, and Mechanism of Upcycled Lithium Slag-Based Geopolymers for High-Capacity Pb(II) Elimination
Yang Tang, Zhouyueyang Cheng, Qilun Jin et al.
30 de julio de 2026
en

Abstract

The concurrent disposal of industrial lithium slag (LS) and the remediation of heavy-metal-contaminated water remain critical environmental imperatives. Herein, industrial lithium slag was successfully upcycled into a high-capacity geopolymer via alkali activation to systematically evaluate its Pb(II) removal mechanisms. Synthesized under optimal conditions (11 mol/L alkali concentration, 0.616 solid-to-liquid ratio), the geopolymer showed exceptional Pb(II) capture, achieving ~99% removal efficiency within 120 min for a 100 mg/L Pb(II) solution at pH 6.0. The adsorption kinetics obeyed the pseudo-first-order model, yielding a remarkable theoretical equilibrium capacity of 284 mg/g. Thermodynamic results reveal a spontaneous (ΔG < 0), endothermic (ΔH = 17.66 kJ/mol) process with increased interfacial randomness (ΔS > 0). Integrating macroscopic performance with characterizations and density functional theory (DFT) computations elucidated a site-specific chemisorption mechanism and the precipitation of PbSO4 caused by Pb(II) and SO42− in LS. Ultimately, this work provides a sustainable paradigm for the value-added upcycling of industrial solid waste.

IPC Classification

C07

Keywords

synthesisperformancemechanismupcycledlithiumslag-basedgeopolymershigh-capacityeliminationprocessesconcurrentdisposalindustrialslagremediationheavy-metal-contaminatedwaterremaincriticalenvironmentalimperativeshereinsuccessfullygeopolymer
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