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Abstract

FeCl3 bearing etching solution is mainly used for etching of metals used in shadow masks, PCBs and so on. Due course of Invar alloy etching process the FeCl3 bearing etching solution get contaminated with Ni2+ which affect adversely the etching efficiency. Hence, FeCl3 bearing etching solution discarded after several cycle of operation causes an environmental and economic problem. To address both the issues the etching solution was purified through solvent extraction and remained Ni2+ recovered by wet chemical reduction using hydrazine. For optimum Fe3+ extraction efficiency, various extraction parameter were optimized and size and morphology of the recovered pure Ni powder was analyzed. The reported process is a simple process to purify and recover Ni from industry etching solution.

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Authors and Affiliations

Il-Jeong Park
Basudev Swain
Dae-Weon Kim
Geon-Hong Kim
Deok-Hyun Han
Hang-Chul Jung
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Abstract

As the amount of high-capacity secondary battery waste gradually increased, waste secondary batteries for industry (high-speed train & HEV) were recycled and materialization studies were carried out. The precipitation experiment was carried out with various conditions in the synthesis of LiNi0.6Co0.2Mn0.2O2 material using a Taylor reactor. The raw material used in this study was a leaching solution generated from waste nickel-based batteries. The nickel-cobalt-manganese (NCM) precursor was prepared by the Taylor reaction process. Material analysis indicated that spherical powder was formed, and the particle size of the precursor was decreased as the reaction speed was increased during the preparation of the NCM. The spherical NCM powder having a particle size of 10 µm was synthesized using reaction conditions, stirring speed of 1000 rpm for 24 hours. The NCM precursor prepared by the Taylor reaction was synthesized as a cathode material for the LIB, and then a coin-cell was manufactured to perform the capacity evaluation.
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Bibliography

[1] A.M. Bernardes, D.C.R. Espinosa, J.A.S. Tenorio, J. Power Sour. 130, 291 (2004).
[2] D.W. Kim, I. J. Park, N.K. Ahn, H.C. Jung, S.H. Jung, J.Y. Choi, D.H. Yang, J. of Kor. Inst. of Res. Rec. 27 (4), 36 (2018).
[3] D.H. Han, I.J. Park, M.J. Kim, D.W. Kim, H.C. Jung, Kor. J. Met. Mater. 57 (6), 360 (2019).
[4] W.S. Kim, J. Chem. Eng. Jpn. 47, 115 (2014).
[5] R. Schmuch, V. Siozios, M. Winter, T. Placke, Mat. Matters 15, 2 (2020).
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Authors and Affiliations

Hang-Chul Jung
1
ORCID: ORCID
Deokhyun Han
1
ORCID: ORCID
Dae-Weon Kim
1
ORCID: ORCID
Byungmin Ahn
2
ORCID: ORCID

  1. Institute for Advanced Engineering (IAE), Yongin, Korea
  2. Ajou University, Department of Materials Science and Engineering and Department of Energy Systems Research, 206 Worldcup-ro, Yeongtong-gu, Suwon, Gyeonggi, 16499, Korea

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