Effect of Sn Addition on the Anode Properties of SiOxfor Lithium-Ion Batteries

被引:0
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作者
Hirono T. [1 ,4 ]
Usui H. [1 ,3 ]
Domi Y. [1 ,3 ]
Nishida T. [2 ,3 ]
Irie W. [2 ,3 ]
Sawada T. [4 ]
Sakaguchi H. [1 ,3 ]
机构
[1] Department of Chemistry and Biotechnology, Graduate School of Engineering, Tottori University, 4-101 Minami, Koyama-cho, Tottori
[2] Course of Chemistry and Biotechnology, Department of Engineering, Graduate School of Sustainability Science, Tottori University, 4-101 Minami, Koyama-cho, Tottori
[3] Center for Research on Green Sustainable Chemistry, Tottori University, 4-101 Minami, Koyama-cho, Tottori
[4] Sanyo Special Steel Co. Ltd., 3007 Nakashima, Shikama-ku, Hyogo, Himeji
基金
日本学术振兴会;
关键词
Electronic Conductivity; Lithium-Ion Batteries; Mechanical Milling; Sn-Added SiO[!sub]x[!/sub;
D O I
10.5796/ELECTROCHEMISTRY.22-00038
中图分类号
学科分类号
摘要
In this study, we have prepared Sn-added SiOxusing a mechanical milling method and investigated the effect of Sn addition on the anode properties of SiOxfor lithium-ion batteries. A charge-discharge cycle test with a charge limit of 1000 mAh g-1 shows that the SiOxelectrode causes a capacity fading loss by 170 cycles. Conversely, it is confirmed that the SiOxelectrodes with the addition of 1 or 3 wt% of Sn maintain a discharge capacity of up to 250 or 360 cycles, respectively, and the charge-discharge cycle life is extended depending on the amount added. Furthermore, the test is conducted by reducing the lithium-insertion amount from 1000 to 750 mAh g-1 to observe the effect of Sn addition. Resultantly, the difference in cycle life is more pronounced, and the discharge capacity of the 3 wt% Sn-added SiOxis maintained for up to 540 cycles. When the amount of Sn added is as small as 1 wt%, the lithium insertion reaction is locally concentrated because of insufficient electronic conductivity, and Li3.75Si, with a large volume change, is formed. Resultantly, this electrode causes the disintegration of the electrode and a decrease in capacity. However, in the SiOxelectrode with 3 wt% of Sn, the reactivity of the lithium ions in the SiO2 matrix is enhanced by the improvement in the electronic conductivity. Thus, the entire active material layer reacts easily and uniformly with the lithium ions. Resultantly, the structure is such that the stress of Si is less likely to concentrate, the damage to the electrodes is reduced, and the electrode disintegration can be suppressed, which is the reason for the enhanced cycle life. © 2022 Electrochemical Society of Japan. All rights reserved.
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