Greener Route for Recovery of High-Purity Lanthanides from the Waste of Nickel Metal Hydride Battery Using a Hydrophobic Deep Eutectic Solvent

被引:14
作者
Cruz, KaiqueA. M. L. [1 ]
Rocha, Fabio R. P. [2 ]
Hespanhol, Maria C. [1 ]
机构
[1] Univ Fed Vicosa, Ctr Exact & Technol Sci, Chem Dept, Grp Anal & Educ Sustainabil, BR-36570900 Vicosa, MG, Brazil
[2] Univ Sao Paulo, Ctr Nucl Energy Agr, BR-13416000 Piracicaba, SP, Brazil
基金
巴西圣保罗研究基金会;
关键词
deep eutectic solvent; battery waste; greenerseparation; lanthanum; cerium; lanthaniderecovery; RARE-EARTH-ELEMENTS; AQUEOUS SYSTEMS; NIMH BATTERY; MN II; EXTRACTION; SEPARATION; ACID; CERIUM; ELECTRODEPOSITION; OXIDATION;
D O I
10.1021/acssuschemeng.3c07784
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
A hydrophobic deep eutectic solvent (HDES) based on trioctylphosphine oxide and decanoic acid was successfully exploited to separate lanthanides from battery acid leachates. Subsequently, chemical conditions were defined for stripping the metal ions to the aqueous phase, quantitative separation of La and Ce, and their recoveries as La-2(C2O4)(3) and Ce(OH)(4). To achieve a higher yield and greenness, the process was optimized in relation to the acid used for waste leaching (HNO3, H2SO4, and CH3SO3H), the mass ratio of the aqueous to hydrophobic phase (WP:HP), experimental conditions for the back-extraction of lanthanides (Ln) to an aqueous phase, and their recovery as precipitates. Leaching with 2.0 mol L-1 HNO3 was more selective for Ln in relation to the transition metals and further yielded better extraction and separation with HDES. High-extraction efficiencies (96% La and 98% Ce) were achieved at a WP:HP of 1:8 with separation factors of 763 for La/Ni and 1149 for Ce/Ni. Ln was stripped from the HDES phase with 4.0 mol L-1 HCl solution, and the metals were recovered as Ce(IV) hydroxide and La(III) oxalate. The extraction mechanism was proposed, and the metal recoveries at each step of the procedure were evaluated. The global recoveries were 86.8% La and 97.6% Ce, and the solids were obtained with >99.6% purity, as characterized by energy-dispersive X-ray spectrometry coupled with electron scanning microscopy and inductively coupled plasma optical emission spectrometry analysis. The recycling and reuse of HDES for at least five extraction cycles without affecting recovery or selectivity were demonstrated, increasing the environmental friendliness of this approach. This proposal stands out from the environmental and economic perspectives owing to the sustainable recovery of critical raw materials from a secondary source using an alternative solvent with minimum separation steps.
引用
收藏
页码:6169 / 6181
页数:13
相关论文
共 84 条
[1]   Novel solvent properties of choline chloride/urea mixtures [J].
Abbott, AP ;
Capper, G ;
Davies, DL ;
Rasheed, RK ;
Tambyrajah, V .
CHEMICAL COMMUNICATIONS, 2003, (01) :70-71
[2]   Purification of rare earth elements from monazite sulphuric acid leach liquor and the production of high-purity ceric oxide [J].
Abreu, Renata D. ;
Morais, Carlos A. .
MINERALS ENGINEERING, 2010, 23 (06) :536-540
[3]   Recycling of spent NiMH batteries: Integration of battery leach solution into primary Ni production using solvent extraction [J].
Agarwal, Vivek ;
Khalid, Muhammad K. ;
Porvali, Antti ;
Wilson, Benjamin P. ;
Lundstrom, Mari .
SUSTAINABLE MATERIALS AND TECHNOLOGIES, 2019, 22
[4]   Valorization of waste NiMH battery through recovery of critical rare earth metal: A simple recycling process for the circular economy [J].
Ahn, Nak-Kyoon ;
Shim, Hyun-Woo ;
Kim, Dae-Weon ;
Swain, Basudev .
WASTE MANAGEMENT, 2020, 104 :254-261
[5]   Hydrometallurgical recycling strategies for recovery of rare earth elements from consumer electronic scraps: a review [J].
Akcil, Ata ;
Ibrahim, Yahaya Alhaji ;
Meshram, Pratima ;
Panda, Sandeep ;
Abhilashb .
JOURNAL OF CHEMICAL TECHNOLOGY AND BIOTECHNOLOGY, 2021, 96 (07) :1785-1797
[6]  
[Anonymous], 2020, Critical Raw Materials Resilience: Charting a Path towards greater Security and Sustainability
[7]  
Ansari AA, 2010, J SEMICOND, V31, DOI [10.1088/1674-4926/31/5/053001, 10.1088/1674-4926/31/3/033001]
[8]  
Balboul BAA, 2002, THERMOCHIM ACTA, V387, P109
[9]   Methanesulfonic Acid (MSA) in Hydrometallurgy [J].
Binnemans, Koen ;
Jones, Peter Tom .
JOURNAL OF SUSTAINABLE METALLURGY, 2023, 9 (01) :26-45
[10]   Assessment and design of greener deep eutectic solvents - A multicriteria decision analysis [J].
Bystrzanowska, Marta ;
Tobiszewski, Marek .
JOURNAL OF MOLECULAR LIQUIDS, 2021, 321