A sustainable δ-MnO₂ derived from Amazon rainforest Mn-ore tailings for applications in lithium-ion batteries

尾矿 亚马逊雨林 锂(药物) 火法冶金 环境科学 冶金 环境化学 材料科学 地球化学 地质学 化学 生态学 冶炼 医学 生物 内分泌学
作者
Lorenzo Angeletti,Marco Agostini,Bruno Apolo Miranda Figueira,Anderson Oliveira Latini,Elaine Cristina Paris,Francesca De Giorgio,Tor P. Schultz,Corrado Di Conzo,Francesco Mura,Marco Rossi,Neelam Yadav,Philipp Adelhelm,Franco Mazzei,Sergio Brutti,Simone Quaranta
出处
期刊:Sustainable Materials and Technologies [Elsevier BV]
卷期号:44: e01347-e01347 被引量:3
标识
DOI:10.1016/j.susmat.2025.e01347
摘要

The transition to net-zero emissions by 2050 necessitates the development of sustainable and efficient energy storage systems to complement the rise in renewable energy generation. Lithium-ion batteries (LiBs) are pivotal in this energy transformation, yet challenges remain in developing sustainable, high-performance materials. Manganese oxides (MnOₓ) are promising candidates for LiBs anodes due to their abundance and high theoretical capacity. However, the commercial synthesis of MnOₓ materials is resource-intensive, and the mining processes generate large amounts of environmentally hazardous tailings. In this study, we propose a novel method to recover manganese from mining tailings in the Brazilian Amazon and synthesize δ-MnO₂ as a high-capacity conversion anode material for LIBs. Using a green recovery method involving KOH and H₂O₂, we extracted potassium manganate (K₂MnO₄) from the tailings with a recovery efficiency of 90.3 %,and synthesized δ-MnO₂. The prepared material showed promising electrochemical properties, demonstrating its potential as a sustainable alternative to commercially available manganese oxides. This process not only offers a way to mitigate the environmental risks posed by manganese mining tailings but also provides an economically viable solution for producing high-performance battery materials. The developed methodology can be applied to other manganese-bearing residues and low-grade ores, contributing to the growing demand for battery-grade manganese in a sustainable and circular manner.
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