Effect of NMC-doping Concentration on the Structural Feature and Electrical Properties of Lithium Iron Phosphate Cathode for Use in Lithium-ion Batteries

IF 0.6 4区 综合性期刊 Q3 MULTIDISCIPLINARY SCIENCES Chiang Mai Journal of Science Pub Date : 2024-07-31 DOI:10.12982/cmjs.2024.064
Suchanat Suttison, Pakinee Thongrit, Suwanan Thammarong, K. Pengpat, U. Intatha, Jinchen Fan, Wei Zhang, S. Eitssayeam
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Abstract

T his study investigates the synthesis of Lithium Iron Phosphate (LFP) with NMC-doped cathode materials, aiming to enhance the performance of lithium-ion batteries. The NMC content was varied from 0.02 to 0.10wt%, and 1wt% of (NH4)3PO4 was added to all conditions to prevent phosphate loss during the calcination process. The composite powder was prepared using a straightforward mixed oxide method, with a calcination temperature of 600 °C for 5 hours under an argon gas flow. X-ray diffraction (XRD) analysis confirmed the successful formation of pure LFP with an orthorhombic crystal structure, devoid of any secondary phases. To further explore the impact of NMC doping on the structural characteristics, FTIR and Raman spectroscopy were employed. Results revealed that increasing NMC doping concentration beyond 0.02wt% led to the broadening of the PO43− symmetric stretching band at approximately 947 cm−1, indicating a higher degree of disorder in the LFP structures. This disorder was found to adversely affect electrochemical performance, resulting in decreased discharge capacity and increased impedance, as determined by electrochemical impedance spectroscopy (EIS), with higher concentrations of NMC and (NH4)3PO4. Scanning Electron Microscopy (SEM) analysis unveiled the presence of agglomerated particles ranging in size from 0.5 to 0.9 microns. Optimal conditions were identified with the addition of NMC doped at 0.02wt%, which exhibited a discharge capacity of approximately 119.41 mAh/g at 0.2 C, along with a low impedance of 200 Ohm. Moreover, the 0.02wt% sample demonstrated a promising linear trend in cycle performance, suggesting its potential for future applications in lithium-ion batteries.
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掺杂 NMC 浓度对用于锂离子电池的磷酸铁锂阴极的结构特征和电气性能的影响
本研究探讨了掺杂 NMC 的正极材料合成磷酸铁锂(LFP),旨在提高锂离子电池的性能。NMC 的含量在 0.02 至 0.10wt% 之间变化,并且在所有条件下都添加了 1wt% 的 (NH4)3PO4,以防止煅烧过程中磷酸盐的流失。复合粉末采用直接混合氧化法制备,煅烧温度为 600 ℃,在氩气流下煅烧 5 小时。X 射线衍射(XRD)分析证实,成功地形成了纯 LFP,其晶体结构为正方体,没有任何次生相。为了进一步探讨掺杂 NMC 对结构特征的影响,研究人员采用了傅立叶变换红外光谱和拉曼光谱。结果表明,当 NMC 掺杂浓度超过 0.02wt% 时,位于约 947 cm-1 处的 PO43- 对称伸展带会变宽,这表明 LFP 结构的无序程度更高。研究发现,随着 NMC 和 (NH4)3PO4 浓度的增加,这种无序会对电化学性能产生不利影响,导致放电容量降低,电化学阻抗光谱(EIS)测定的阻抗增加。扫描电子显微镜(SEM)分析表明,存在大小为 0.5 至 0.9 微米的团聚颗粒。在 0.2 摄氏度的条件下,NMC 的掺杂量为 0.02wt%,放电容量约为 119.41 mAh/g,阻抗为 200 欧姆。此外,0.02wt% 的样品在循环性能方面表现出良好的线性趋势,这表明它在未来锂离子电池中的应用潜力巨大。
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来源期刊
Chiang Mai Journal of Science
Chiang Mai Journal of Science MULTIDISCIPLINARY SCIENCES-
CiteScore
1.00
自引率
25.00%
发文量
103
审稿时长
3 months
期刊介绍: The Chiang Mai Journal of Science is an international English language peer-reviewed journal which is published in open access electronic format 6 times a year in January, March, May, July, September and November by the Faculty of Science, Chiang Mai University. Manuscripts in most areas of science are welcomed except in areas such as agriculture, engineering and medical science which are outside the scope of the Journal. Currently, we focus on manuscripts in biology, chemistry, physics, materials science and environmental science. Papers in mathematics statistics and computer science are also included but should be of an applied nature rather than purely theoretical. Manuscripts describing experiments on humans or animals are required to provide proof that all experiments have been carried out according to the ethical regulations of the respective institutional and/or governmental authorities and this should be clearly stated in the manuscript itself. The Editor reserves the right to reject manuscripts that fail to do so.
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