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α-Fe2O3 空心纳米桶负载在还原氧化石墨烯上作为锂离子电池的高性能阳极。

Hollow Nanobarrels of α-Fe2O3 on Reduced Graphene Oxide as High-Performance Anode for Lithium-Ion Batteries.

机构信息

Department of Materials Science and Engineering, Yonsei University , Shinchondong, 262 Seongsanno, Seodaemoongu, Seoul 120-749, Republic of Korea.

Department of Environment and Energy Engineeering, Gachon University , Seongnamdaero 1342, 461-710 Gyeonggi-do, Seongnam, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2016 Jan 27;8(3):2027-34. doi: 10.1021/acsami.5b10342. Epub 2016 Jan 12.

DOI:10.1021/acsami.5b10342
PMID:26717009
Abstract

Alpha-phase iron oxide nanoparticles (α-NPs), α-iron oxide hollow nanobarrels (α-HNBs), and α-HNBs on reduced graphene oxide (α-HNBs/RGO) for Li-ion batteries (LIBs) were synthesized by a time-efficient microwave method to improve the low electrical conductivity of iron oxide and exploit the porous structure of RGO, which prevents the volume expansion of α-Fe2O3 during the insertion/extraction. On the other hand, α-HNBs (∼200 nm in diameter, ∼360 nm in length) provide a short diffusion path for Li ions and accommodate the strain generated by the volume change. The α-HNBs/RGO hybrid structure was synthesized by a one-step microwave-assisted hydrothermal method to bond α-HNBs with RGO. The as-prepared α-HNBs/RGO electrode exhibited a superior reversible capacity of 1279 mA h g(-1) at 0.5 C after the first cycle; such a capacity was nearly recovered after numerous cycles (2nd to 100th cycle, 95%). The long-term cyclability of α-HNBs/RGO shows 478 mA h g(-1) after 1000 cycles. Moreover, the α-HNBs/RGO electrode shows a high rate capacity of 403 mA h g(-1) even at 10 C. The α-HNBs/RGO exhibited a better electrochemical performance that could be attributed to the absence of nanoparticle agglomeration and RGO restacking, which provided a buffer effect against the volume expansion, promoted electrical conductivity and high structural integrity.

摘要

用于锂离子电池(LIBs)的α 相氧化铁纳米粒子(α-NPs)、α-氧化铁中空纳米棒(α-HNBs)和还原氧化石墨烯负载的α-HNBs(α-HNBs/RGO)通过高效的微波法合成,以提高氧化铁的低导电性并利用 RGO 的多孔结构,防止α-Fe2O3 在插入/提取过程中的体积膨胀。另一方面,α-HNBs(直径约 200nm,长度约 360nm)为 Li 离子提供了短的扩散路径,并容纳了由体积变化产生的应变。α-HNBs/RGO 杂化结构通过一步微波辅助水热法合成,将α-HNBs 与 RGO 键合。所制备的α-HNBs/RGO 电极在第一个循环后以 0.5C 的电流密度具有 1279mA h g-1 的优异可逆容量;在多次循环后(第 2 到 100 次循环,95%),该容量几乎得以恢复。α-HNBs/RGO 在 1000 次循环后仍具有 478mA h g-1 的长循环稳定性。此外,即使在 10C 的高电流密度下,α-HNBs/RGO 电极也具有 403mA h g-1 的高倍率容量。α-HNBs/RGO 表现出更好的电化学性能,这归因于没有纳米颗粒团聚和 RGO 堆积,提供了对体积膨胀的缓冲效应,促进了电导率和高结构完整性。

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