Unraveling the impact of CNT on electrode expansion in silicon-based lithium-ion batteries

被引:0
|
作者
Kim, Yujin [1 ]
Kim, Moonjin [2 ]
Kim, Namhyung [3 ]
Cha, Hyungyeon [4 ]
Kim, Seokjin [5 ]
Sung, Jaekyung [5 ]
Cho, Jaephil [1 ,6 ]
机构
[1] Ulsan Natl Inst Sci & Technol UNIST, Sch Energy & Chem Engn, Dept Energy Engn, 50 UNIST Gil, Ulsan 44919, South Korea
[2] LG Energy Solut Res Pk, Res Pk 188,Munji Ro, Seoul 305738, South Korea
[3] Pukyong Natl Univ, Dept Mat Syst Engn, 45 Yongso Ro, Busan 48513, South Korea
[4] Korea Inst Energy Res KIER, Ulsan Adv Energy Technol R&D Ctr, Ulsan, South Korea
[5] Gyeongsang Natl Univ, Dept Mat Engn & Convergence Technol, 501 Jinju Daero, Jinju 52828, South Korea
[6] SMLAB Co Ltd, 27 Gachengongdan 1 gil, Ulsan 44919, South Korea
基金
新加坡国家研究基金会;
关键词
Silicon graphite composite anodes; Carbon nanotube; Electrode expansion; Solid-electrolyte interphase; Lithium-ion batteries; ANODES; PERFORMANCE; LITHIATION; NANOTUBES; PROGRESS; DESIGN;
D O I
10.1016/j.ensm.2024.103983
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A high-capacity silicon-based anode has been used in commercial lithium-ion batteries as a form of an addition to an existing graphite electrode for the realization of high energy density. However, under industrial conditions using high-density electrodes (>1.6 g cc(-1), low electrode porosity), the electrode expansion becomes more severe, which engenders the decrease in energy density and safety issues. Carbon nanotubes (CNTs) have emerged as promising additives due to their outstanding electrical conductivity and mechanical strength. Despite their potential, the chemo-mechanical and electrochemical roles of CNTs in silicon-based anodes are not fully understood. Herein, we identify the mechanisms by which CNTs enhance silicon-based anodes with constructive comparison of commercial conductive agents. Our results show that CNTs alleviate strain-induced interfacial reactions and control the growth of the solid electrolyte interphase (SEI) layer during cycling. CNTs provide mechanical reinforcement, reducing particle-level cracking and enhancing electron pathways, which lowers surface tension and decelerates crack propagation. This significantly diminishes electrode pulverization and swelling. As a result, we observe a stable cycling stability (Cycle life: 94.6% for 100 cycles) of silicon-graphite composite (SGC) in 1 Ah pouch-type full cell. Remarkably, the SGC blended with graphite showed better electrochemical performance at low temperature cycling, fast-charging cycling and rate capability compared to the conventional graphite.
引用
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页数:11
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