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NASICON-Structured NaTi2(PO4)3 for Sustainable Energy Storage

期刊

NANO-MICRO LETTERS
卷 11, 期 1, 页码 -

出版社

SHANGHAI JIAO TONG UNIV PRESS
DOI: 10.1007/s40820-019-0273-1

关键词

NaTi2(PO4)(3); Sodium superionic conductor; Anode; Batteries; Hybrid capacitors

资金

  1. National Natural Science Foundation of China [51302079]
  2. Natural Science Foundation of Hunan Province [2017JJ1008]
  3. theKey Research and Development Program of Hunan Province of China [2018GK2031]

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HighlightsFor the first time, we fully presented the recent progress of the application of NaTi2(PO4)(3) on sodium-ion batteries including non-aqueous batteries, aqueous batteries, aqueous batteries with desalination, and sodium-ion hybrid capacitors.The unique NASICON structure of NaTi2(PO4)(3) and the various strategies on improving the performance of NaTi2(PO4)(3) electrode have been presented and summarized in detail. AbstractSeveral emerging energy storage technologies and systems have been demonstrated that feature low cost, high rate capability, and durability for potential use in large-scale grid and high-power applications. Owing to its outstanding ion conductivity, ultrafast Na-ion insertion kinetics, excellent structural stability, and large theoretical capacity, the sodium superionic conductor (NASICON)-structured insertion material NaTi2(PO4)(3) (NTP) has attracted considerable attention as the optimal electrode material for sodium-ion batteries (SIBs) and Na-ion hybrid capacitors (NHCs). On the basis of recent studies, NaTi2(PO4)(3) has raised the rate capabilities, cycling stability, and mass loading of rechargeable SIBs and NHCs to commercially acceptable levels. In this comprehensive review, starting with the structures and electrochemical properties of NTP, we present recent progress in the application of NTP to SIBs, including non-aqueous batteries, aqueous batteries, aqueous batteries with desalination, and sodium-ion hybrid capacitors. After a thorough discussion of the unique NASICON structure of NTP, various strategies for improving the performance of NTP electrode have been presented and summarized in detail. Further, the major challenges and perspectives regarding the prospects for the use of NTP-based electrodes in energy storage systems have also been summarized to offer a guideline for further improving the performance of NTP-based electrodes.

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