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用于长寿命水系钠离子电池的普鲁士蓝材料中通过球磨实现的铁到铁的氧化还原反应

Ball Milling-Enabled Fe to Fe Redox Reaction in Prussian Blue Materials for Long-Life Aqueous Sodium-Ion Batteries.

作者信息

Lucero Marcos, Armitage Davis B, Yang Xin, Sandstrom Sean K, Lyons Mason, Davis Ryan C, Sterbinsky George E, Kim Namhyung, Reed David M, Ji Xiulei, Li Xiaolin, Feng Zhenxing

机构信息

School of Chemical, Biological, and Environmental Engineering, Oregon State University, Corvallis, Oregon 97331, United States.

Pacific Northwest National Laboratory, Richland, Washington 99352, United States.

出版信息

ACS Appl Mater Interfaces. 2023 Aug 2;15(30):36366-36372. doi: 10.1021/acsami.3c07304. Epub 2023 Jul 23.

Abstract

Aqueous Na-ion batteries using Prussian blue materials have inherent advantages in safety, material sustainability, and economic cost. However, it is challenging to obtain long-term cycling stability because many redox reactions have poor intrinsic stability in water. Here, we demonstrate reversible Fe to Fe redox reaction of Prussian blue electrodes cycled in a 17 m NaClO water-in-salt electrolyte. The cubic phase c-NaFe[Fe(CN)]·0.35HO) derived from monoclinic Prussian blue (m-NaFe[Fe(CN)]·0.7HO) through ball milling delivers excellent cycling stability of >18,000 cycles with >90% capacity retention at the 10C rate. The specific capacity is ∼75 and ∼67 mAh/g at 1C and 10C rates, respectively. Systematic characterizations including electron microscopy, X-ray diffraction, Fourier-transform infrared spectroscopy, X-ray photoelectron spectroscopy, and X-ray absorption spectroscopy have verified the phase transition and iron oxidation state evolution, revealing the mechanism that enables the material's high rate and long durability as the battery cathode.

摘要

使用普鲁士蓝材料的水系钠离子电池在安全性、材料可持续性和经济成本方面具有固有优势。然而,由于许多氧化还原反应在水中的固有稳定性较差,因此获得长期循环稳定性具有挑战性。在此,我们展示了普鲁士蓝电极在17 m NaClO水盐电解质中循环时铁到铁的可逆氧化还原反应。通过球磨从单斜普鲁士蓝(m-NaFe[Fe(CN)]·0.7H₂O)衍生而来的立方相c-NaFe[Fe(CN)]·0.35H₂O)在10C倍率下具有超过18,000次循环的出色循环稳定性,容量保持率>90%。在1C和10C倍率下的比容量分别约为75和67 mAh/g。包括电子显微镜、X射线衍射、傅里叶变换红外光谱、X射线光电子能谱和X射线吸收光谱在内的系统表征已经验证了相变和铁氧化态的演变,揭示了使该材料作为电池阴极具有高倍率和长耐久性的机制。

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