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高结晶度的铁氰化镍作为钠离子电池的长寿命阴极材料。

Highly crystalline nickel hexacyanoferrate as a long-life cathode material for sodium-ion batteries.

作者信息

Rehman Ratul, Peng Jian, Yi Haocong, Shen Yi, Yin Jinwen, Li Chang, Fang Chun, Li Qing, Han Jiantao

机构信息

School of Materials Science and Engineering, State Key Laboratory for Materials Processing and Die & Mould Technology, Huazhong University of Science and Technology Wuhan 430074 People's Republic of China

出版信息

RSC Adv. 2020 Jul 21;10(45):27033-27041. doi: 10.1039/d0ra03490h. eCollection 2020 Jul 15.

Abstract

Prussian blue analogs (PBAs) are attractive cathode candidates for high energy density, including long life-cycle rechargeable batteries, due to their non-toxicity, facile synthesis techniques and low cost. Nevertheless, traditionally synthesized PBAs tend to have a flawed crystal structure with a large amount of [Fe(CN)] openings and the presence of crystal water in the framework; therefore the specific capacity achieved has continuously been low with poor cycling stability. Herein, we demonstrate low-defect and sodium-enriched nickel hexacyanoferrate nanocrystals synthesized by a facile low-speed co-precipitation technique assisted by a chelating agent to overcome these problems. As a consequence, the prepared high-quality nickel hexacyanoferrate (HQ-NiHCF) exhibited a high specific capacity of 80 mA h g at 15 mA g (with a theoretical capacity of ∼85 mA h g), maintaining a notable cycling stability (78 mA h g at 170 mA g current density) without noticeable fading in capacity retention after 1200 cycles. This low-speed synthesis strategy for PBA-based electrode materials could be also extended to other energy storage materials to fabricate high-performance rechargeable batteries.

摘要

普鲁士蓝类似物(PBAs)因其无毒、合成技术简便且成本低,是用于高能量密度的有吸引力的阴极候选材料,包括长寿命可充电电池。然而,传统合成的PBAs往往具有缺陷的晶体结构,有大量的[Fe(CN)]空位且骨架中存在结晶水;因此,所实现的比容量一直较低,循环稳定性也较差。在此,我们展示了通过一种由螯合剂辅助的简便低速共沉淀技术合成的低缺陷且富钠的六氰合铁酸镍纳米晶体,以克服这些问题。结果,制备的高质量六氰合铁酸镍(HQ-NiHCF)在15 mA g时表现出80 mA h g的高比容量(理论容量约为85 mA h g),保持了显著的循环稳定性(在170 mA g电流密度下为78 mA h g),在1200次循环后容量保持率无明显衰减。这种基于PBA的电极材料的低速合成策略也可扩展到其他储能材料,以制造高性能可充电电池。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/07a0/9055524/715beb5557da/d0ra03490h-f1.jpg

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