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碱土金属钒酸盐作为钠离子电池的负极。

Alkaline earth metal vanadates as sodium-ion battery anodes.

机构信息

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, 430070, China.

College of Physics and Electronic Engineering, Sichuan Normal University, Chengdu, 610101, China.

出版信息

Nat Commun. 2017 Sep 6;8(1):460. doi: 10.1038/s41467-017-00211-5.

Abstract

The abundance of sodium resources indicates the potential of sodium-ion batteries as emerging energy storage devices. However, the practical application of sodium-ion batteries is hindered by the limited electrochemical performance of electrode materials, especially at the anode side. Here, we identify alkaline earth metal vanadates as promising anodes for sodium-ion batteries. The prepared calcium vanadate nanowires possess intrinsically high electronic conductivity (> 100 S cm), small volume change (< 10%), and a self-preserving effect, which results in a superior cycling and rate performance and an applicable reversible capacity (> 300 mAh g), with an average voltage of ∼1.0 V. The specific sodium-storage mechanism, beyond the conventional intercalation or conversion reaction, is demonstrated through in situ and ex situ characterizations and theoretical calculations. This work explores alkaline earth metal vanadates for sodium-ion battery anodes and may open a direction for energy storage.The development of suitable anode materials is essential to advance sodium-ion battery technologies. Here the authors report that alkaline earth metal vanadates are promising candidates due to the favorable electrochemical properties and interesting sodium-storage mechanism.

摘要

钠离子资源丰富,这表明钠离子电池作为新兴储能设备具有潜力。然而,电极材料的电化学性能有限,特别是在阳极方面,这限制了钠离子电池的实际应用。在这里,我们将碱土金属钒酸盐确定为钠离子电池有前景的阳极材料。制备的钙钒酸盐纳米线具有内在的高导电性(>100 S cm)、小的体积变化(<10%)和自我保持效应,这导致了优异的循环和倍率性能以及可适用的可逆容量(>300 mAh g),平均电压约为 1.0 V。通过原位和异位表征和理论计算,证明了这种特殊的钠存储机制超出了传统的插层或转化反应。这项工作探索了碱土金属钒酸盐作为钠离子电池阳极的可能性,可能为储能开辟了一个新的方向。

发展合适的阳极材料对于推进钠离子电池技术至关重要。在这里,作者报告说,由于具有有利的电化学性能和有趣的储钠机制,碱土金属钒酸盐是很有前途的候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3079/5587687/eaf4e8306e03/41467_2017_211_Fig1_HTML.jpg

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