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    前驅體烘干溫度對富鋰錳基正極材料形貌和電化學性能的影響

    楊震 厲英 馬培華

    楊震, 厲英, 馬培華. 前驅體烘干溫度對富鋰錳基正極材料形貌和電化學性能的影響[J]. 工程科學學報, 2021, 43(8): 1019-1023. doi: 10.13374/j.issn2095-9389.2020.12.31.007
    引用本文: 楊震, 厲英, 馬培華. 前驅體烘干溫度對富鋰錳基正極材料形貌和電化學性能的影響[J]. 工程科學學報, 2021, 43(8): 1019-1023. doi: 10.13374/j.issn2095-9389.2020.12.31.007
    YANG Zhen, LI Ying, MA Pei-hua. Effect of precursor drying temperature on the morphology and electrochemical performance of lithium-rich manganese-based cathode materials[J]. Chinese Journal of Engineering, 2021, 43(8): 1019-1023. doi: 10.13374/j.issn2095-9389.2020.12.31.007
    Citation: YANG Zhen, LI Ying, MA Pei-hua. Effect of precursor drying temperature on the morphology and electrochemical performance of lithium-rich manganese-based cathode materials[J]. Chinese Journal of Engineering, 2021, 43(8): 1019-1023. doi: 10.13374/j.issn2095-9389.2020.12.31.007

    前驅體烘干溫度對富鋰錳基正極材料形貌和電化學性能的影響

    doi: 10.13374/j.issn2095-9389.2020.12.31.007
    基金項目: 國家自然科學基金資助項目(51834004,51774076,51474057,51904068)
    詳細信息
      通訊作者:

      E-mail: liying@mail.neu.edu.cn

    • 中圖分類號: TM912.9

    Effect of precursor drying temperature on the morphology and electrochemical performance of lithium-rich manganese-based cathode materials

    More Information
    • 摘要: 以過渡金屬硫酸鹽、氫氧化鈉、氨水為原料,通過連續共沉淀–高溫固相法制備了富鋰錳基正極材料Li1.17Ni0.33Mn0.5O2。對其進行了包括微觀形貌、宏觀形貌、晶體結構、電化學性能等方面的表征,研究了前驅體烘干溫度對于粒度較小前驅體的宏觀形貌及鋰化后正極材料的微觀形貌和電化學性能的影響。結果表明,烘干溫度較高的前驅體在烘干后出現了明顯了宏觀燒結現象,鋰化并涂布后出現了明顯的顆粒;烘干溫度較低的前驅體在烘干后并未出現宏觀燒結現象,鋰化并涂布后未出現明顯的顆粒。在電化學性能方面,前驅體烘干溫度較高的正極材料在經歷50個循環后,可逆比容量只剩下85%,下降比較明顯;前驅體烘干溫度較低的正極材料在經歷了50個循環后,可逆比容量未出現明顯下降。

       

    • 圖  1  LLO1和LLO2前驅體及正極材料涂布后宏觀形貌。(a)LLO1前驅體;(b)LLO2前軀體;(c)LLO1正極材料;(d)LLO2正極材料

      Figure  1.  Macro morphology of precursor and cathode materials: (a) precursor of LLO1; (b) precursor of LLO2; (c) cathode material of LLO1; (d) cathode material of LLO2

      圖  2  存在大顆粒的樣品輥壓后宏觀形貌

      Figure  2.  Macroscopic morphology of samples with large particles after rolling

      圖  3  LLO1(a)和LLO2(b)樣品的微觀形貌

      Figure  3.  Electron microprobe images of LLO1 sample (a) and LLO2 sample (b)

      圖  4  LLO1(a)和LLO2(b)樣品XRD圖及精修后圖譜

      Figure  4.  XRD pattern and Rietveld refinement results of LLO1 sample (a) and LLO2 sample (b)

      圖  5  LLO1和LLO2的倍率(a)及循環性能(b)

      Figure  5.  Rate capacity (a) and cycling capacity (b) of LLO1 and LLO2

      表  1  不同樣品的Rietveld精修結果表

      Table  1.   Summary of Rietveld refinement results

      Samplea/nmc/nmI(003)/I(104)NiLiBragg RRpRwpχ2
      LLO10.286691.425662.012.87%0.771.962.791.748
      LLO20.286421.423822.403.04%1.022.152.981.795
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    • 收稿日期:  2020-12-31
    • 網絡出版日期:  2021-07-02
    • 刊出日期:  2021-08-25

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