4.8 Article

Activating a Multielectron Reaction of NASICON-Structured Cathodes toward High Energy Density for Sodium-Ion Batteries

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JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 143, 期 43, 页码 18091-18102

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jacs.1c06727

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资金

  1. National Research Foundation of Korea (NRF) grants through the Korean government [NRF2017R1A2B3004383, NRF-2017R1A5A1015365, NRF2017M3D1A1039561, NRF-2020M3D1A1110527]
  2. Brain Pool Program through the National Research Foundation of Korea (NRF) - Ministry of Science and ICT [2019H1D3A1A01102899, 2020H1D3A1A02081301]
  3. National Natural Science Foundation of China [11704114]
  4. National Science Foundation of China [22108218]
  5. Hunan Provincial Natural Science Foundation of China [2018JJ3110]
  6. Advanced Light Source (ALS) fellowship program
  7. National Research Foundation of Korea [2020H1D3A1A02081301, 2019H1D3A1A01102899] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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The demand for efficiently storing and utilizing electricity from renewable energy resources has led to an increased interest in sodium-ion battery technology. By utilizing a doping strategy with Cr in NASICON-structured cathodes, multielectron redox reactions are activated, resulting in significantly improved energy density, overcoming the bottleneck for commercializing sodium-ion batteries.
The increasing demand to efficiently store and utilize the electricity from renewable energy resources in a sustainable way has boosted the request for sodium-ion battery technology due to the high abundance of sodium sources worldwide. Na superionic conductor (NASICON) structured cathodes with a robust polyanionic framework have been intriguing because of their open 3D structure and superior thermal stability. The ever-increasing demand for higher energy densities with NASICON-structured cathodes motivates us to activate multielectron reactions, thus utilizing the third sodium ion toward higher voltage and larger capacity, both of which have been the bottlenecks for commercializing sodium-ion batteries. A doping strategy with Cr inspired by first-principles calculations enables the activation of multielectron redox reactions of the redox couples V2+/V3+, V3+/V4+, and V4+/V5+, resulting in remarkably improved energy density even in comparison to the layer structured oxides and Prussian blue analogues. This work also comprehensively clarifies the role of the Cr dopant during sodium storage and the valence electron transition process of both V and Cr. Our findings highlight the importance of a broadly applicable doping strategy for achieving multielectron reactions of NASICON-type cathodes with higher energy densities in sodium-ion batteries.

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