Cornelius Satria Yudha, Firman Asto Putro, Adelia Maretha Putri, Anggraini Putri Sulistyowati, Iga Trisnawati, M. Nur Ikhsanudin, Meidiana Arinawati, Agus Purwanto, Widi Astuti, Himawan Tri Bayu Murti Petrus
Iron scrap is an abundant and chemically stable urban waste resource that offers a viable alternative iron source for lithium iron phosphate (LiFePO 4 , LFP) cathode synthesis, bypassing the handling challenges of ferrous sulfate in high-humidity tropical environments.This work establishes a complete scrap-to-cathode route and couples selective sulfuric acid leaching and pH-controlled oxalate precipitation of heterogeneous domestic scrap (∼87 wt% Fe) with a systematic study of carbon-coating strategies. Leaching in 1.5 M H 2 SO 4 at 60–70°C, followed by pH-controlled precipitation at pH 3 recovered phase-pure β-FeC 2 O 4 ·2 H 2 O precursor with quantitative ferric and chromium removal. The precursor was confirmed by XRD, FTIR, and TG-DTA, and its oxidative stability enables direct gravimetric stoichiometric control during LFP formulation. Four LFP/C samples were synthesized via solid-state sintering under a nitrogen atmosphere, varying the carbon source (activated carbon, AC; stearic acid, SA; and their 50:50 mixture) and sintering duration (6 h and 12 h). XRD confirmed single-phase olivine LFP (Pnma) for the mixed-carbon samples (LFP-C, LFP-D), while single-source samples (LFP-A, LFP-B) exhibited Li 3 PO 4 as a secondary phase due to non-uniform local reducing conditions. LFP-C (AC:SA 50:50, 6 h) delivered the best electrochemical performance: specific discharge capacity of 121.2 mAh g −1 , Coulombic efficiency of 79.51%, and superior rate capability across 0.05C–0.2 C, consistent with its finest pore texture (S BET = 7.94 m 2 g −1 ; mean pore radii = 92.8 Å) and most uniform carbon coating arising from the synergistic AC–SA mechanism. Techno-economic analysis on an LFP-C basis yielded an economic potential of USD 9.25 kg −1 LFP with a CO 2 emission intensity of 6.5–7.0 kg CO 2 kg −1 LFP, within the literature range for the oxalate synthesis route. These results demonstrate that scrap-derived LFP is technically feasible, economically rational, and practically deployable as a domestically sourced cathode material for battery manufacturing in developing countries.