Greening the supply chain: Sustainable approaches for rare earth element recovery from neodymium iron boron magnet waste

被引:7
|
作者
Yadav, Jaishree [1 ]
Sarker, Shuronjit Kumar [1 ]
Bruckard, Warren [2 ]
Jegatheesan, Veeriah [1 ]
Haque, Nawshad [2 ]
Singh, Nahar [3 ]
Pramanik, Biplob Kumar [1 ]
机构
[1] RMIT Univ, Sch Engn, Melbourne, Vic 3001, Australia
[2] CSIRO Mineral Resources, Melbourne, Vic 3169, Australia
[3] CSIR Natl Phys Lab, New Delhi 110012, India
来源
关键词
NdFeB magnet; Magnet waste; Electronic waste; REEs recovery; Hydrometallurgy; LIFE-CYCLE ANALYSIS; FE-B MAGNETS; NDFEB MAGNETS; CIRCULAR ECONOMY; SOLVENT-EXTRACTION; RECYCLING POTENTIALS; SELECTIVE EXTRACTION; TRANSITION-METALS; SINTERED MAGNETS; PRECIOUS METALS;
D O I
10.1016/j.jece.2024.113169
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The increasing demand for modern technologies has led to a growing reliance on rare earth elements (REEs). To address this issue, recycling used products such as permanent magnet waste containing REEs. However, this approach necessitates the development of advanced extraction and separation techniques to ensure high yields and purity of the REEs extracted. This review provides an overview of the latest extraction and separation technologies, with a particular focus on the hydrometallurgical approach for extracting REEs from secondary sources, notably permanent magnets. Hydrometallurgy, which involves leaching followed by solvent extraction for purification, has gained widespread use for obtaining REEs from secondary sources, as evidenced by its reported high recovery efficiencies. We found that the recovery of REEs using chemical leaching varied between 80% and 99%, influenced by factors such as type of source material, leaching solvent, leaching conditions, impurities, reaction kinetics and solid -liquid ratio. However, effectively employing this process on a larger scale still faces certain challenges due to the excessive use of corrosive solvents for leaching magnet waste and the generation of toxic chemicals as end products in the form of leachate. Additionally, the current process exhibits deficiencies in the targeted recovery of REEs from magnet waste, specifically in achieving purity and selectivity by eliminating iron impurities. This article concludes that the future prospects for the selective recovery of REEs from neodymium iron boron magnet waste lie in green and environment -friendly solvents. One such approach revolves around the utilization of biodegradable organic acids and salt aqua regia for leaching. These solvents are less corrosive and have high dissolution efficiency, which results in less chemical consumption and an overall environment -friendly and cost-effective recovery process.
引用
收藏
页数:18
相关论文
共 39 条
  • [21] Scalable and Consolidated Microbial Platform for Rare Earth Element Leaching and Recovery from Waste Sources
    Good, Nathan M.
    Kang-Yun, Christina S.
    Su, Morgan Z.
    Zytnick, Alexa M.
    Barber, Colin C.
    Vu, Huong N.
    Grace, Joseph M.
    Nguyen, Hoang H.
    Zhang, Wenjun
    Skovran, Elizabeth
    Fan, Maohong
    Park, Dan M.
    Martinez-Gomez, Norma Cecilia
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2023, 58 (01) : 570 - 579
  • [22] Recovery of rare earth oxides from a phosphoric acid byproduct. Part 4. The preparation of magnet-grade neodymium oxide from the light rare earth fraction
    Mintek, Randburg, South Africa
    Hydrometallurgy, 2 (151-167):
  • [23] Algal sorbents and prospects for their application in the sustainable recovery of rare earth elements from E-waste
    Pinto, Joao
    Colonia, Joao
    Abdolvaseei, Azadeh
    Vale, Carlos
    Henriques, Bruno
    Pereira, Eduarda
    ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2023, 30 (30) : 74521 - 74543
  • [24] Algal sorbents and prospects for their application in the sustainable recovery of rare earth elements from E-waste
    João Pinto
    João Colónia
    Azadeh Abdolvaseei
    Carlos Vale
    Bruno Henriques
    Eduarda Pereira
    Environmental Science and Pollution Research, 2023, 30 : 74521 - 74543
  • [25] Advances in bio/chemical approaches for sustainable recycling and recovery of rare earth elements from secondary resources
    Danouche, M.
    Bounaga, A.
    Oulkhir, A.
    Boulif, R.
    Zeroual, Y.
    Benhida, R.
    Lyamlouli, K.
    SCIENCE OF THE TOTAL ENVIRONMENT, 2024, 912
  • [26] Recovery of rare earth elements from waste permanent magnet (WPMs) via selective leaching using the Taguchi method
    Ni'am, Achmad Chusnun
    Wang, Ya-Fen
    Chen, Shyh-Wei
    You, Sheng-Jie
    JOURNAL OF THE TAIWAN INSTITUTE OF CHEMICAL ENGINEERS, 2019, 97 : 137 - 145
  • [27] From Waste to Wealth: A Circular Economy Approach to the Sustainable Recovery of Rare Earth Elements and Battery Metals from Mine Tailings
    Chowdhury, Mohammed Omar Sahed
    Talan, Deniz
    SEPARATIONS, 2025, 12 (02)
  • [28] A Review of the Current Progress in High-Temperature Recycling Strategies for Recovery of Rare-Earth Elements from Magnet Waste
    Zakeri, Ali
    Tafaghodi, Leili
    JOURNAL OF SUSTAINABLE METALLURGY, 2025, 11 (01) : 88 - 113
  • [29] Recovery of rare earth elements from NdFeB magnet by mono- and bifunctional mesoporous silica: Waste recycling strategies and perspectives
    Dudarko, Oksana
    Kobylinska, Natalia
    Kessler, Vadim
    Seisenbaeva, Gulaim
    HYDROMETALLURGY, 2022, 210
  • [30] Technoeconomic analysis of supercritical fluid extraction process for recycling rare earth elements from neodymium iron boron magnets and fluorescent lamp phosphors
    Azimi, Gisele
    Sauber, Maziar E.
    Zhang, Jiakai
    JOURNAL OF CLEANER PRODUCTION, 2023, 422