Boosting the Sodium-Ion Transport and Surface Pseudocapacitance of a SnO2 Nanoflower at a High Mass Loading Level for High Areal Capacity and Fast Sodium-Ion Storage

被引:0
作者
Guo, Kai X. [1 ]
Zhang, Yao H. [1 ]
Wang, Qin [1 ]
Yu, Di W. [1 ]
Zhang, Yan G. [1 ]
Ji, Pu G. [2 ]
Khalilov, Umedjon [3 ]
Wang, Gong K. [2 ]
Zhang, Xin [2 ]
Wang, Kai [1 ]
Song, Yue X. [1 ]
Zhong, Xiao B. [1 ]
Sun, Hong T. [4 ]
Liang, Jun F. [1 ]
机构
[1] North Univ China, Sch Energy & Power Engn, Taiyuan 030051, Peoples R China
[2] Hebei Univ Technol, Sch Mat Sci & Engn, Tianjin Key Lab Mat Laminating Fabricat & Interfac, Tianjin 300130, Peoples R China
[3] Acad Sci Uzbek, Arifov Inst Ion Plasma & Laser Technol, Tashkent 100015, Uzbekistan
[4] Penn State Univ, Harold & Inge Marcus Dept Ind & Mfg Engn, Mat Res Inst, University Pk, PA 16802 USA
基金
中国国家自然科学基金;
关键词
SnO2; nanoflower; 3D holey graphene; high surface area; highareal capacity; fast sodium-ionstorage; ANODE MATERIAL; NA-ION; LITHIUM; COMPOSITE; BATTERIES; DESIGN;
D O I
10.1021/acsanm.3c06293
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The exploitation of electrode materials with high areal capacity and rate performance under high mass loading is critical for the practical application of sodium-ion batteries (SIBs), and 3D nanocomposite electrode materials based on nanoelectrode materials and 3D carbon-based material frameworks have shown extraordinary promise. However, the areal capacity and rate performance are unsatisfactory because of the low utilization efficiency and sluggish Na+ kinetics of active Na+ storage materials. To address this problem, we developed a 3D SnO2 nanoflower-holey graphene (SnO2 NF-HG) composite electrode. The 3D HG framework can provide a fully interconnected hierarchical porous channel for Na+ transport to the SnO2 surface, and the flower-like SnO2 nanomaterials with larger surface area can provide more active sites for Na+ storage. The electrochemical test results indicate the low Na+ resistance and high pseudocapacitance contribution of the as-prepared 3D SnO2 NF-HG electrodes. As a result, the low utilization efficiency and sluggish Na+ kinetics of the active Na+ storage materials were substantially boosted, and the 3D composite electrodes show impressive properties of high areal capacity and fast Na+ storage. Under a high current density of 5 mA cm(-2), the 3D SnO2 NF-HG composite electrodes with high mass loading of 10 mg cm(-2) achieve a strikingly high and stable areal capacity of 3 mAh cm(-2). This high areal capacity is the same as those of commercial lithium-ion battery electrode materials and greatly exceeds those of most reported SIB electrode materials. Our work shows that rationally designed active Na+ storage electrode materials with large surface area represent an effective strategy for promoting high-mass-loading 3D composites and high-specific-capacity electrode materials toward practical SIB applications.
引用
收藏
页码:12304 / 12311
页数:8
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