STUDY OF THE PROCESS OF OBTAINING A COMPOSITE MATERIAL "SPHERICAL GRAPHITE - Fe2O3"

被引:4
作者
Bratkov, I. V. [1 ]
Ivanov, A. D. [1 ]
Kolchin, A. D. [1 ]
Savitskiy, I. A. [1 ]
机构
[1] Ivanovo State Univ Chem Technol, Sheremetevskiy Ave 7, Ivanovo 153000, Russia
来源
IZVESTIYA VYSSHIKH UCHEBNYKH ZAVEDENII KHIMIYA I KHIMICHESKAYA TEKHNOLOGIYA | 2024年 / 67卷 / 03期
关键词
spherical graphite; iron oxide; lithium-ion battery; ANODE MATERIALS; ION; LI4TI5O12; PERFORMANCE;
D O I
10.6060/ivkkt.20246703.7041
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this article, a study was conducted on the process of obtaining a composite material "spherical graphite - iron oxide", with the aim of its further use as an anode material for lithiumion batteries. The composite was obtained by depositing iron oxide nanoparticles on the surface of spherical graphite. The influence of the deposition process parameters on the physico-chemical properties of the composite has been studied. It was found that the following factors have a significant effect on the final properties of the composite: the nature of the precipitator, the density of graphite loading of the precipitation working solution, the aging time of the system, the ratio of diand trivalent iron in solution. Solutions of ammonia and urea were studied as precipitators. In the case of using urea, the formation of iron oxide particles with smaller coherent scattering regions, that is, with smaller crystallite sizes, was noted. Amorphous Fe2O3 precipitates are more preferable in terms of using them as an anode material. With an increase in the loading density of the graphite deposition solution, an increase in the yield of iron oxide nanoparticles was observed, however, at loading densities above 15 g/l, large iron oxide aggregates were formed. With an increase in the aging time of the deposition system, an improvement in the distribution of iron oxide nanoparticles over the surface of spherical graphite and a decrease in nanoparticle aggregates were noted. An increase in the molar fraction of Fe2+ in the precipitation solution has a similar effect. Based on the experimental data obtained, the optimal modes of the iron oxide deposition process were determined. Under these conditions, a sample of spherical graphite coated with Fe2O3 nanoparticles with average particle sizes of 30-50 nm was obtained. The oxide content in the sample was 3.7%. Electrochemical studies of the lithiumion battery layout have shown that spherical graphite modified with iron oxide shows a reversible capacity increased to 370 mA center dot h/g and greater stability of work.
引用
收藏
页码:127 / 134
页数:8
相关论文
共 20 条
[1]   Structural and electrical properties of Li4Ti5O12 anode material for lithium-ion batteries [J].
Babu, B. Vikram ;
Babu, K. Vijaya ;
Aregai, G. Tewodros ;
Devi, L. Seeta ;
Latha, B. Madhavi ;
Reddi, M. Sushma ;
Samatha, K. ;
Veeraiah, V. .
RESULTS IN PHYSICS, 2018, 9 :284-289
[2]   INVESTIGATION OF THE EFFECT OF MECHANOCHEMICAL ACTIVATION IN A SHOCK-REFLECTIVE MILL ON THE CRYSTAL STRUCTURE OF NATURAL GRAPHITE [J].
Bratkov, I. V. ;
Ivanov, A. D. ;
Kolchin, A. D. ;
Savitsky, I. A. ;
Smirnov, N. N. .
IZVESTIYA VYSSHIKH UCHEBNYKH ZAVEDENII KHIMIYA I KHIMICHESKAYA TEKHNOLOGIYA, 2023, 66 (04) :68-74
[3]   Nano-sized Tin Oxide-Modified Graphite Composite as Efficient Anode Material for Lithium Ion Batteries [J].
Chang, Chia-Chin ;
Chen, Li-Chia ;
Hung, Tai-Ying ;
Su, Yuh-Fan ;
Su, Huang-Kai ;
Lin, Jarrn-Horng ;
Hu, Chih-Wei ;
Saravanan, Lakshmanan ;
Chen, Tsan-Yao .
INTERNATIONAL JOURNAL OF ELECTROCHEMICAL SCIENCE, 2018, 13 (12) :11762-11776
[4]   Lithium intercalated graphite with preformed passivation layer as superior anode for Lithium ion batteries [J].
Choi, Sukyoung ;
Jung, Gyujin ;
Kim, Jong Eun ;
Lim, TaeYoung ;
Suh, Kwang S. .
APPLIED SURFACE SCIENCE, 2018, 455 :367-372
[5]   Comparison of the reactions between Li7/3Ti5/3O4 or LiC6 and nonaqueous solvents or electrolytes using accelerating rate calorimetry [J].
Jiang, JW ;
Chen, J ;
Dahn, JR .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2004, 151 (12) :A2082-A2087
[6]   A high-performance anode for lithium ion batteries: Fe3O4 microspheres encapsulated in hollow graphene shells [J].
Jiang, Yu ;
Jiang, Zhong-Jie ;
Yang, Lufeng ;
Cheng, Shuang ;
Liu, Meilin .
JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (22) :11847-11856
[7]   Secondary Lithium-Ion Battery Anodes: From First Commercial Batteries to Recent Research Activities Addressing the challenges in rechargeable lithium-ion battery technologies [J].
Loeffler, Nicholas ;
Bresser, Dominic ;
Passerini, Stefano ;
Copley, Mark .
JOHNSON MATTHEY TECHNOLOGY REVIEW, 2015, 59 (01) :34-44
[8]   Thick solid electrolyte interphases grown on silicon nanocone anodes during slow cycling and their negative effects on the performance of Li-ion batteries [J].
Luo, Fei ;
Chu, Geng ;
Xia, Xiaoxiang ;
Liu, Bonan ;
Zheng, Jieyun ;
Li, Junjie ;
Li, Hong ;
Gu, Changzhi ;
Chen, Liquan .
NANOSCALE, 2015, 7 (17) :7651-7658
[9]   Artificial solid-electrolyte interphase (SEI) for improved cycleability and safety of lithium-ion cells for EV applications [J].
Menkin, S. ;
Golodnitsky, D. ;
Peled, E. .
ELECTROCHEMISTRY COMMUNICATIONS, 2009, 11 (09) :1789-1791
[10]   ZERO-STRAIN INSERTION MATERIAL OF LI[LI1/3TI5/3]O-4 FOR RECHARGEABLE LITHIUM CELLS [J].
OHZUKU, T ;
UEDA, A ;
YAMAMOTO, N .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1995, 142 (05) :1431-1435