Alkaline earth metal vanadates as sodium-ion battery anodes

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作者
Xiaoming Xu
Chaojiang Niu
Manyi Duan
Xuanpeng Wang
Lei Huang
Junhui Wang
Liting Pu
Wenhao Ren
Changwei Shi
Jiasheng Meng
Bo Song
Liqiang Mai
机构
[1] Wuhan University of Technology,State Key Laboratory of Advanced Technology for Materials Synthesis and Processing
[2] Sichuan Normal University,College of Physics and Electronic Engineering
[3] School of Optical-Electrical Computer Engineering,Terahertz Technology Innovation Research Institute
[4] University of Shanghai for Science and Technology,undefined
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Nature Communications | / 8卷
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摘要
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−1), 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−1), 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.
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  • [1] Chu S(2012)Opportunities and challenges for a sustainable energy future Nature 488 294-303
  • [2] Majumdar A(2011)Electrical energy storage for the grid: a battery of choices Science 334 928-935
  • [3] Dunn B(2015)Towards greener and more sustainable batteries for electrical energy storage Nat. Chem. 7 19-29
  • [4] Kamath H(2014)Research development on sodium-ion batteries Chem. Rev. 114 11636-11682
  • [5] Tarascon JM(2013)Sodium-ion batteries Adv. Funct. Mater. 23 947-958
  • [6] Larcher D(2012)Electrode materials for rechargeable sodium-ion batteries: potential alternatives to current lithium-ion batteries Adv. Energy Mater. 2 710-721
  • [7] Tarascon JM(2013)Room-temperature stationary sodium-ion batteries for large-scale electric energy storage Energy Environ. Sci. 6 2338-2360
  • [8] Yabuuchi N(2015)The emerging chemistry of sodium ion batteries for electrochemical energy storage Angew. Chem. Int. Ed. 54 3431-3448
  • [9] Kubota K(2016)Origin of low sodium capacity in graphite and generally weak substrate binding of Na and Mg among alkali and alkaline earth metals Proc. Natl. Acad. Sci. USA 113 3735-3739
  • [10] Dahbi M(2012)P2-type Na Nat. Mater. 11 512-517