Achieving a high-performance Prussian blue analogue cathode with an ultra-stable redox reaction for ammonium ion storage

Chunyang Li, Wenqi Yan, Shishuo Liang, Peng Wang, Jing Wang, Lijun Fu, Yusong Zhu, Yuhui Chen, Yuping Wu, Wei Huang

Research output: Contribution to journalArticlepeer-review

103 Scopus citations

Abstract

Aqueous rechargeable batteries with advantages of safety, low cost, and environmental kindness have displayed high feasibility of practical applications for large-scale energy storage. Developing high-performance electrode materials is a necessary gateway to commercially available batteries. Here, we demonstrate the controlled synthesis of sodium iron hexacyanoferrates, NaFeIIIFeII(CN)6 (Na-FeHCFs). Ball-cutting Na-FeHCF nanocubes are first synthesized and used as a cathode material for aqueous ammonium-ion batteries. Due to fast charge transfer and diffusion, the ball-cutting Na-FeHCF nanocubes exhibit a high discharge capacity of 62 mA h g-1 at 0.25 A g-1 and 77.4% capacity retention at 2 A g-1. Such excellent capacity and rate performance are superior to those of other Na-FeHCFs and the reported ammonium-ion intercalation cathodes. Furthermore, they present unparalleled cycling stability with no capacity loss over 50 000 cycles, thanks to the highly stable redox reaction of the high-spin nitrogen-coordinated FeII/FeIII (FeH) couple. This work supplies a new view to design high-performance cathode materials for ammonium ion storage.

Original languageEnglish
Pages (from-to)991-998
Number of pages8
JournalNanoscale Horizons
Volume4
Issue number4
DOIs
StatePublished - Jul 2019
Externally publishedYes

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