Slug Flow Coprecipitation Synthesis of Uniformly-Sized Oxalate Precursor Microparticles for Improved Reproducibility and Tap Density of Li(Ni 0.8 Co 0.1 Mn 0.1 )O 2 Cathode Materials

The microparticle quality and reproducibility of Li(Ni Co Mn )O (NCM811) cathode materials are important for Li-ion battery performance but can be challenging to control directly from synthesis. Here, a scalable reproducible synthesis process is designed based on slug flow to rapidly generate unifor...

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Veröffentlicht in:ACS applied energy materials 2023-03, Vol.6 (6), p.3213-3224
Hauptverfasser: Mou, Mingyao, Patel, Arjun, Mallick, Sourav, Jayanthi, K, Sun, Xiao-Guang, Paranthaman, Mariappan Parans, Kothe, Sophie, Baral, Ena, Saleh, Selma, Mugumya, Jethrine H, Rasche, Michael L, Gupta, Ram B, Lopez, Herman, Jiang, Mo
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Sprache:eng
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Zusammenfassung:The microparticle quality and reproducibility of Li(Ni Co Mn )O (NCM811) cathode materials are important for Li-ion battery performance but can be challenging to control directly from synthesis. Here, a scalable reproducible synthesis process is designed based on slug flow to rapidly generate uniform micron-size spherical-shape NCM oxalate precursor microparticles at 25-34 °C. The whole process takes only 10 min, from solution mixing to precursor microparticle generation, without needing aging that typically takes hours. These oxalate precursors are convertible to spherical-shape NCM811 oxide microparticles, through a preliminary design of low heating rates (e.g., 0.1 and 0.8 °C/min) for calcination and lithiation. The outcome oxide cathode particles also demonstrate improved tap density (e.g., 2.4 g mL for NCM811) and good specific capacity (202 mAh g at 0.1 C) in coin cells and reasonably good cycling performance with LiF coating.
ISSN:2574-0962
2574-0962
DOI:10.1021/acsaem.2c03563