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    鈣鈦礦型鋰離子固體電解質Li2x?ySr1?xTi1?yNbyO3的性能

    盧佳垚 厲英 倪培遠 唐甜甜

    盧佳垚, 厲英, 倪培遠, 唐甜甜. 鈣鈦礦型鋰離子固體電解質Li2x?ySr1?xTi1?yNbyO3的性能[J]. 工程科學學報, 2021, 43(8): 1024-1031. doi: 10.13374/j.issn2095-9389.2020.12.03.004
    引用本文: 盧佳垚, 厲英, 倪培遠, 唐甜甜. 鈣鈦礦型鋰離子固體電解質Li2x?ySr1?xTi1?yNbyO3的性能[J]. 工程科學學報, 2021, 43(8): 1024-1031. doi: 10.13374/j.issn2095-9389.2020.12.03.004
    LU Jia-yao, LI Ying, NI Pei-yuan, TANG Tian-tian. Performance of perovskite-type Li-ion solid electrolyte Li2x?ySr1?xTi1?yNbyO3[J]. Chinese Journal of Engineering, 2021, 43(8): 1024-1031. doi: 10.13374/j.issn2095-9389.2020.12.03.004
    Citation: LU Jia-yao, LI Ying, NI Pei-yuan, TANG Tian-tian. Performance of perovskite-type Li-ion solid electrolyte Li2x?ySr1?xTi1?yNbyO3[J]. Chinese Journal of Engineering, 2021, 43(8): 1024-1031. doi: 10.13374/j.issn2095-9389.2020.12.03.004

    鈣鈦礦型鋰離子固體電解質Li2x?ySr1?xTi1?yNbyO3的性能

    doi: 10.13374/j.issn2095-9389.2020.12.03.004
    基金項目: 國家自然科學基金資助項目(51834004,51774076,51704062)
    詳細信息
      通訊作者:

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

    • 中圖分類號: TM 911

    Performance of perovskite-type Li-ion solid electrolyte Li2x?ySr1?xTi1?yNbyO3

    More Information
    • 摘要: 采用高溫固相法成功制備了Li2x?ySr1?xTi1?yNbyO3 (x=3y/4, y=0.25, 0.5, 0.6, 0.7, 0.75, 0.8)鋰離子固體電解質,并通過X射線衍射(XRD)、掃描電子顯微鏡(SEM)、交流阻抗圖譜、恒電位極化等分別研究了各個組分的晶體結構、微觀形貌、離子電導率和電子電導率。XRD顯示當y≤0.70時,材料為立方鈣鈦礦型結構,幾乎沒有雜質相生成。SEM表明隨著摻雜含量的增加材料的晶粒尺寸逐漸增大。Li0.35Sr0.475Ti0.3Nb0.7O3鋰離子固體電解質有著高離子電導率,為3.62×10?5 S·cm?1,其電子電導率為2.55×10?9 S·cm?1,活化能僅為0.29 eV。使用以Li0.35Sr0.475Ti0.3Nb0.7O3為隔膜的LiFePO4/Li半電池經過100圈循環后,放電比容量仍有93.9 mA·h·g?1,容量保持率為90.72%。

       

    • 圖  1  Li2x?ySr1?xTi1?yNbyO3材料的XRD圖譜

      Figure  1.  XRD pattern of Li2x?ySr1?xTi1?yNbyO3

      圖  2  Li2x?ySr1?xTi1?yNbyO3 (x=3y/4, y=0.25, 0.5, 0.6, 0.7)的擬合XRD圖譜

      Figure  2.  Fitted XRD patterns of Li2x?ySr1?xTi1?yNbyO3 (x = 3y/4, y = 0.25, 0.5, 0.6, 0.7)

      圖  3  Li2x?ySr1?xTi1?yNbyO3材料的SEM圖

      Figure  3.  SEM photographs of Li2x?ySr1?xTi1?yNbyO3

      圖  4  Li2x?ySr1?xTi1?yNbyO3樣品的XPS總譜圖(a)及Sr 3d(b)、Ti 2p(c)、Nb 3d(d)的區域XPS譜圖

      Figure  4.  XPS spectra of Li2x?ySr1?xTi1?yNbyO3 samples (a), regions XPS spectra of Sr 3d (b), Ti 2p (c), Nb 3d (d)

      圖  5  20 ℃時Li2x?ySr1?xTi1?yNbyO3固體電解質的交流阻抗圖譜

      Figure  5.  AC Impedance spectra of Li2x?ySr1?xTi1?yNbyO3 solid electrolytes at 20 ℃

      圖  6  Li2x?ySr1?xTi1?yNbyO3固體電解質的Arrhenius曲線

      Figure  6.  Arrhenius curves of Li2x?ySr1?xTi1?yNbyO3 solid electrolytes

      圖  7  Li2x?ySr1?xTi1?yNbyO3固體電解質的恒電位極化曲線

      Figure  7.  Li2x?ySr1?xTi1?yNbyO3 solid electrolytes constant potential polarization curves

      圖  8  以Li0.35Sr0.475Ti0.3Nb0.7O3為隔膜LiFePO4/Li半電池的充放電曲線圖(a),放電比容量與庫倫效率曲線圖(b),電池的阻抗圖譜(c)

      Figure  8.  Charge-discharge curves (a), discharge capacity and coulombic efficiency curves (b), AC impedance plot (c) of LiFePO4/Li half-cell with Li0.35Sr0.475Ti0.3Nb0.7O3 as the separator

      表  1  Li2x?ySr1?xTi1?yNbyO3 (x=3y/4, y=0.25, 0.5, 0.6, 0.7)的晶胞精修數據

      Table  1.   Crystal refinement data of Li2x?ySr1?xTi1?yNbyO3 (x = 3y/4, y = 0.25, 0.5, 0.6, 0.7)

      SampleLattice
      constant/
      nm
      Unweighted-
      profile R
      factor /%
      Weighted
      profile R
      factor/%
      Goodness
      of fit
      Li0.125Sr0.8125Ti0.75Nb0.25O30.391637.3519.7487.634
      Li0.25Sr0.625Ti0.5Nb0.5O30.393156.2918.2293.709
      Li0.3Sr0.55Ti0.4Nb0.6O30.393716.5408.96310.897
      Li0.35Sr0.475Ti0.3Nb0.7O30.394226.3548.6489.334
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    • 收稿日期:  2020-12-03
    • 網絡出版日期:  2021-03-27
    • 刊出日期:  2021-08-25

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