4.7 Article

Electrode design and performance of flow-type electrochemical lithium recovery (ELR) systems

Journal

DESALINATION
Volume 532, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.desal.2022.115732

Keywords

Lithium; Electrochemical lithium recovery; Lithium manganese oxide; P2D model; Electrode design parameter; Carbon-neutrality

Funding

  1. National Research Foundation of Korea (NRF) - Korea government (MSIT) [2022R1C1C1006820]
  2. Korea Ministry of Environment (MOE) Graduate School specialized in Integrated Pollution Prevention and Control Project
  3. University Innovation Support Program for Dankook University
  4. National Research Foundation of Korea [2022R1C1C1006820] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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This study systematically investigated the effects of electrode design parameters on the performance of ELR system, finding that the effective radius of LMO particles is the most important parameter.
Due to increasing interests in carbon neutral engineering, global market demand for lithium compounds is steadily growing, which serve as key compounds in the battery production. As a sustainable alternative for lithium compound production, electrochemical lithium recovery (ELR) is being studied extensively in recent years. However, research efforts for ELR have been mainly devoted to the synthesis of electrode materials, leaving an open problem of comprehensively understanding the effects of multiple electrode design parameters on the system performances. In this study, to address such a problem systematically, the ELR system with lambda-MnO2/LiMn2O4 (LMO) electrodes is numerically investigated at a low current density of 62.5 mu A/cm(2). Three electrode design parameters are selected, which are known as key parameters in the literature: effective radius of LMO particles (r(p)), volume fraction of LMO particles in electrodes (epsilon(s)), and electrode thickness (delta). Under the parameter range considered, the specific mass of Li(+ )recovered (q(Li+)) took the value ranging from 35.71 mg/g to 37.66 mg/g, while the range covered by the net energy consumption (W-net) was from 0.17 Wh/mol to 5.44 Wh/ mol. Sensitivity analysis showed that, with increasing r(p), q(Li+) decreases and W-net increases, while opposite correlations were observed for epsilon(s) and delta. It was also shown that the maximum of q(Li+) and the minimum of W-net can be achieved only with small r(p) (regardless of epsilon(s)& nbsp;and delta), making it the most important parameter.

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