Özet
Silicon is a promising high capacity (4200 mA h g-1) anode material for lithium ion batteries but the significant volume change (over 300%) of silicon during lithiation/delithiation remains a challenge in terms of silicon pulverization and solid-electrolyte-interphase (SEI) accumulation in the silicon composite electrode. To alleviate the volumetric change of silicon, we built a flexible and self-supporting carbon-enhanced carbon nanofiber (CNF) structure with vacant chamber to encapsulate Si nanoparticles (vacant Si@CNF@C). This composite was tested directly without any polymer and current collector. The confined vacant chamber allowed the increasing volume of silicon and SEI accumulates to be well retained for a long cycle life. This chamber-confined silicon-carbon nanofiber composite exhibited an improved performance in terms of good cycling performance (620 mA h g-1), high coulombic efficiency (99%), and good capacity retention (80%) after 200 cycles. This self-supported silicon-carbon nanofiber structure showed high flexibility and good electrochemical performance for the potential as flexible electrode for lithium-ion batteries.
| Orijinal dil | İngilizce |
|---|---|
| Sayfa (başlangıç-bitiş) | 7489-7495 |
| Sayfa sayısı | 7 |
| Dergi | Nanoscale |
| Hacim | 6 |
| Basın numarası | 13 |
| DOI'lar | |
| Yayın durumu | Yayınlandı - 7 Tem 2014 |
| Harici olarak yayınlandı | Evet |
Finansman
| Finansörler | Finansör numarası |
|---|---|
| National Science Foundation | EEC-08212121 |
BM SKH
Bu sonuç, aşağıdaki Sürdürülebilir Kalkınma Hedefine/Hedeflerine katkıda bulunur
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SKH 7 Erişilebilir ve Temiz Enerji
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