抄録
Silicon micropillars with tunable sizes are successfully fabricated on copper foils by using nanosecond-pulsed laser irradiation and then used as anodes for lithium-ion batteries. The size of the silicon micropillars is manipulated by using different slurry layer thicknesses ranging from a few microns to tens of microns. The effects of the pillar size on electrochemical properties are thoroughly investigated. The smaller the pillars, the better the electrochemical performance. A capacity of 1647 mAh g-1 at 0.1 C current rate is achieved in the anode with the smallest pillars, with 1215, 892, and 582 mAh g-1 at 0.2, 0.5, and 1.0 C, respectively. Although a significant difference in discharge capacity is observed in the early period of cycling among micropillars of different sizes, this discrepancy becomes smaller as a function of the cycle number. Morphological studies reveal that the expansion of micropillars occurred during long-term cycling, which finally led to the formation of island-like structures. Also, the formation of a solid electrolyte interphase film obstructs Li+ diffusion into Si for lithiation, resulting in capacity decay. This study demonstrates the importance of minimizing the pillar size and optimizing the pillar density during anode fabrication.
| 本文言語 | English |
|---|---|
| 論文番号 | 3623 |
| ジャーナル | Applied Sciences (Switzerland) |
| 巻 | 9 |
| 号 | 17 |
| DOI | |
| 出版ステータス | Published - 2019 9月 1 |
UN SDG
この成果は、次の持続可能な開発目標に貢献しています
-
SDG 7 エネルギーをみんなに そしてクリーンに
ASJC Scopus subject areas
- 材料科学一般
- 器械工学
- 工学一般
- プロセス化学およびプロセス工学
- コンピュータ サイエンスの応用
- 流体および伝熱
フィンガープリント
「Effect of the pillar size on the electrochemical performance of laser-induced silicon micropillars as anodes for lithium-ion batteries」の研究トピックを掘り下げます。これらがまとまってユニークなフィンガープリントを構成します。引用スタイル
- APA
- Standard
- Harvard
- Vancouver
- Author
- BIBTEX
- RIS