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In Situ Plastic-Crystal-Coated Cathode toward High-Performance Na-Ion Batteries AITranslate

Tianjin University of Technology; Institute of Physics; University of Chinese Academy of Sciences; Institute of Physics; Institute of Physics; Institute of Physics; University of Chinese Academy of Sciences; University of Chinese Academy of Sciences; Institute of Physics; Institute of Physics; Tianjin University of Technology; Tianjin University of Technology; Tianjin University of Technology; Institute of Physics; Tianjin University of Technology; People’s Republic of China|Institute of High Energy Physics; People’s Republic of China|Institute of High Energy Physics; University of Chinese Academy of Sciences; University of Chinese Academy of Sciences; University of Chinese Academy of Sciences; University of Chinese Academy of Sciences; University of Chinese Academy of Sciences
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Publisher: ACS
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Abstract AITranslate

Cathode materials are critical for Na-ion batteries while facing challenges due to the instability of the structure and interfaces. In this work, we propose a strategy to achieve an in situ plastic-crystal Na3–3xAlxPO4 coating and bulk Al doping for an O3-NaNi0.4Fe0.2Mn0.4O2 cathode through a simple one-step method. Na3–3xAlxPO4 exhibits high ion transport performance due to its unique “paddle-wheel” mechanism. The in situ formed Na3–3xAlxPO4 could consume the residual alkali compounds and induce the formation of a Na-deficient phase, thus leading to enhanced Na+ transport kinetics. Furthermore, strong Al–O bonds formed in the bulk further enhance the crystal structure stability. In a full cell, the capacity retention rate reached 70% after 500 cycles, making its commercial operation possible. Altogether, these results suggest that the in situ plastic-crystal-coating strategy can significantly improve the surface and bulk structure stability of NaNi0.4Fe0.2Mn0.4O2, thus leading to improved electrochemical performance.

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DOI:https://doi.org/10.1021/acsenergylett.3c00009

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Citation Information:

Cathode materials are critical for Na-ion batteries while facing challenges due to the instability of the structure and interfaces. In this work, we propose a strategy to achieve an in situ plastic-crystal Na3–3xAlxPO4 coating and bulk Al doping for an O3-NaNi0.4Fe0.2Mn0.4O2 cathode through a simple one-step method. Na3–3xAlxPO4 exhibits high ion transport performance due to its unique “paddle-wheel” mechanism. The in situ formed Na3–3xAlxPO4 could consume the residual alkali compounds and induce the formation of a Na-deficient phase, thus leading to enhanced Na+ transport kinetics. Furthermore, strong Al–O bonds formed in the bulk further enhance the crystal structure stability. In a full cell, the capacity retention rate reached 70% after 500 cycles, making its commercial operation possible. Altogether, these results suggest that the in situ plastic-crystal-coating strategy can significantly improve the surface and bulk structure stability of NaNi0.4Fe0.2Mn0.4O2, thus leading to improved electrochemical performance.

quote

GB/T 7714-2015 [1] Haibo Wang, Feixiang Ding, Yuqi Wang, et al. ACS Energy Letters, 2023(8). DOI:10.1021/acsenergylett.3c00009.
MLA [1] Haibo Wang, et al., ACS Energy Letters, no. 8, 2023, https://doi.org/10.1021/acsenergylett.3c00009.
APA [1] Haibo Wang, Feixiang Ding, Yuqi Wang, Zhen Han, Rongbin Dang, Hao Yu, Yang Yang, Zhao Chen, Yuqi Li, Fei Xie, Shiguang Zhang, Hongzhou Zhang, Dawei Song, Xiaohui Rong, Lianqi Zhang, Juping Xu, Wen Yin, Yaxiang Lu, Ruijuan Xiao, . . . YongSheng Hu. (2023). ACS Energy Letters(8). https://doi.org/10.1021/acsenergylett.3c00009
IEEE [1] Haibo Wang, Feixiang Ding, Yuqi Wang, Zhen Han, Rongbin Dang, Hao Yu, Yang Yang, Zhao Chen, Yuqi Li, Fei Xie, Shiguang Zhang, Hongzhou Zhang, Dawei Song, Xiaohui Rong, Lianqi Zhang, Juping Xu, Wen Yin, Yaxiang Lu, Ruijuan Xiao, Dong Su, Liquan Chen, and YongSheng Hu, ACS Energy Letters, no. 8, 2023, doi: 10.1021/acsenergylett.3c00009.