Synthesis and characterization of LiNi0.5Mn0.4Co0.1O2 as a cathode material for lithium-ion batteries using the coprecipitation method

被引:0
作者
Purwamargapratala, Yustinus [1 ,2 ]
Zulfia, Anne [1 ]
Kartini, Evvy [2 ]
Sukirman, Engkir [2 ]
Rois, Mahardika F. [2 ]
Jodi, Heri [2 ]
Subhan, Achmad [2 ]
Hardian, Michael [3 ]
机构
[1] Univ Indonesia, Dept Met & Mat Engn, Depok, Indonesia
[2] Res Ctr Adv Mat, Natl Res & Innovat Agcy, South Tangerang, Indonesia
[3] Cent South Univ, Sch Met & Environm, Changsha, Peoples R China
关键词
Cathode; Coprecipitation; LiNi0.5Mn0.4Co0.1O2; Lithium-ion battery;
D O I
10.1007/s11696-025-04144-y
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
This study explores the synthesis and electrochemical characterization of LiNi0.5Mn0.4Co0.1O2 (NMC541) as a cathode material for lithium-ion batteries. Utilizing a coprecipitation method, the research aims to enhance energy storage capacity and thermal stability. The precursor Ni0.5Mn0.4Co0.1(OH)(2) was pyrolyzed and mixed with lithium hydroxide, followed by calcination at temperatures of 700, 800, and 850 degrees C to optimize phase composition and crystallinity. Morphological and structural characterizations were performed using TEM, SEM, XRD, and Raman spectroscopy. Electrochemical performance was assessed in coin cells through cyclic voltammetry, electrochemical impedance spectroscopy, and charge-discharge tests, revealing significant improvements in energy density and thermal stability under optimized conditions. Notably, the NMC541 sample calcined at 800 degrees C for 8 h demonstrated a homogeneous particle distribution and relatively uniform particle sizes, corresponding to the highest conductivity value of 5.099 x 10(-3) S<middle dot>cm(-1). The average particle size was 129.834 nm, and when assembled in a coin cell, the configuration exhibited a discharge capacity of 97.72 mAh<middle dot>g(-1) and an efficiency of 74.40% during the 50 cycles charge-discharge testing. Compared to traditional cathode materials like NMC333 (LiNi0.33Mn0.33Co0.33O2) and NCA (lithium nickel-cobalt-aluminum oxide), NMC541 offers notable advancements. The higher nickel content in NMC541 contributes to increased capacity, while the balanced proportions of manganese and cobalt ensure enhanced structural stability and safety. The comparative analysis highlights that NMC541 provides improved energy density, thermal stability, and cycling performance, making it a formidable candidate for next-generation lithium-ion batteries.
引用
收藏
页码:5543 / 5552
页数:10
相关论文
共 28 条
[1]   Synthesis of Li1.5Ni0.25Mn0.75O2.5 cathode material via carbonate co-precipitation method and its electrochemical properties [J].
Akhilash, M. ;
Salini, P. S. ;
Jalaja, K. ;
John, Bibin ;
Mercy, T. D. .
INORGANIC CHEMISTRY COMMUNICATIONS, 2021, 126
[2]  
Aktas Ahmet., 2021, Solar Hybrid Systems, P87, DOI [10.1016/B978-0-323-88499-0.00005-7, DOI 10.1016/B978-0-323-88499-0.00005-7]
[3]   Characterizing battery materials and electrodes via in situ/operando transmission electron microscopy [J].
Basak, Shibabrata ;
Dzieciol, Krzysztof ;
Durmus, Yasin Emre ;
Tempel, Hermann ;
Kungl, Hans ;
George, Chandramohan ;
Mayer, Joachim ;
Eichel, Ruediger-A. .
CHEMICAL PHYSICS REVIEWS, 2022, 3 (03)
[4]   Lithium solid-state batteries: State-of-the-art and challenges for materials, interfaces and processing [J].
Boaretto, Nicola ;
Garbayo, Inigo ;
Valiyaveettil-SobhanRaj, Sona ;
Quintela, Amaia ;
Li, Chunmei ;
Casas-Cabanas, Montse ;
Aguesse, Frederic .
JOURNAL OF POWER SOURCES, 2021, 502
[5]   Investigation of the temperature and DOD effect on the performance-degradation behavior of lithium-sulfur pouch cells during calendar aging [J].
Capkova, Dominika ;
Knap, Vaclav ;
Fedorkova, Andrea Strakova ;
Stroe, Daniel-Ioan .
APPLIED ENERGY, 2023, 332
[6]   Applications of Lithium-Ion Batteries in Grid-Scale Energy Storage Systems [J].
Chen, Tianmei ;
Jin, Yi ;
Lv, Hanyu ;
Yang, Antao ;
Liu, Meiyi ;
Chen, Bing ;
Xie, Ying ;
Chen, Qiang .
TRANSACTIONS OF TIANJIN UNIVERSITY, 2020, 26 (03) :208-217
[7]   In-situ XRD study of a Chromium doped LiNi0.5Mn1.5O4 cathode for Li-ion battery [J].
Chladil, L. ;
Kunicky, D. ;
Kazda, T. ;
Vanysek, P. ;
Cech, O. ;
Baca, P. .
JOURNAL OF ENERGY STORAGE, 2021, 41 (41)
[8]   Co-precipitation synthesis of nickel-rich cathodes for Li-ion batteries [J].
Entwistle, Thomas ;
Sanchez-Perez, Enrique ;
Murray, Glen J. ;
Anthonisamy, Nirmalesh ;
Cussen, Serena A. .
ENERGY REPORTS, 2022, 8 :67-73
[9]   Raman Diagnostics of Cathode Materials for Li-Ion Batteries Using Multi-Wavelength Excitation [J].
Heber, Marcel ;
Hofmann, Kathrin ;
Hess, Christian .
BATTERIES-BASEL, 2022, 8 (02)
[10]   Making Aqueously Processed LiNi0.5Mn0.3Co0.2O2-Based Electrodes Competitive in Performance: Tailoring Distribution and Interconnection of Active and Inactive Electrode Materials through Paste Surfactants [J].
Ibing, Lukas ;
Gallasch, Tobias ;
Goeken, Vinzenz ;
Niehoff, Philip ;
Winter, Martin ;
Boerner, Markus .
ACS APPLIED ENERGY MATERIALS, 2022, 5 (11) :13155-13160