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Synthesis and Electrochemical Activity of Some Na(Li)-Rich Ruthenium Oxides with the Feasibility to Stabilize Ru~(6+)

机译:一些Na(Li) - 氧化钌的合成和电化学活性,可行性稳定Ru〜(6+)

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摘要

The capacity of Li-ion cathode materials has recently been greatly improved by the feasibility to trigger both cationic and anionic redox reactions within the same material. This concept has rapidly been implemented to Na-ion batteries to boost their energy density. The electrochemical properties of Na3RuO4 with Li3RuO4 are reported and compared herein. Strikingly, it is found that 3 Na can be extracted from Na3RuO4 with the charge compensation mechanism enlisting first the oxidation of Ru5+ to Ru6+, leading to Na2RuO4, and then the oxidation of oxygen during the rest of the charge. This drastically contrasts with the behavior of the Li counterpart since Ru never reaches that high oxidation state during lithium removal. By comparing the phase diagrams of A(x)RuO(4) (A being Li, Na, or K) together with density functional theory calculations, this finding is rationalized and it is demonstrated that this difference is mainly rooted in the size of the alkali cation. The bigger the alkali, the lower the coordination of Ru will be, stabilized by the same higher oxidation states. This work highlights the difference between Li and Na materials toward anionic redox and suggests the unusual coexistence of Ru6+ and (O-2)(n-), hence setting new challenges to theoreticians and opening opportunities for materials design.
机译:最近通过在相同材料内触发阳离子和阴离子氧化还原反应的可行性,锂离子阴极材料的能力大大提高。该概念迅速实现为Na离子电池,以提高其能量密度。报道并比较了Na 3RO 4与Li3RuO4的电化学性质。令人醒目的是,发现3族可以从Na 3 RuO 4中提取3族,电荷补偿机构首先将Ru5 +至Ru6 +的氧化,导致Na 2 RuO 4,然后在其余的电荷期间氧化氧气。由于ru在锂去除期​​间,这与LI对应物的行为有急剧对比。锂去除期间的高氧化态。通过将A(x)Ruo(4)(A为Li,Na或K)的相位图与密度函数理论计算进行比较,这种发现是合理化的,并且证明这种差异主要是植根于此碱阳离子。碱的较大较大,Ru的配位越低,通过相同的更高氧化态稳定。这项工作突出了Li和Na材料对阴离子氧化还原的差异,并提出了ru6 +和(o-2)(n-)的不寻常共存,因此为理论者设立了新的挑战,并开放材料设计的开放机会。

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  • 来源
    《Advanced energy materials》 |2019年第15期|1803674.1-1803674.12|共12页
  • 作者单位

    Coll France Chim Solide & Energie UMR 8260 F-75005 Paris France|Osaka Prefecture Univ Grad Sch Engn Dept Appl Chem Naka Ku 1-1 Gakuen Cho Sakai Osaka 5998531 Japan;

    Coll France Chim Solide & Energie UMR 8260 F-75005 Paris France|Univ Paris 06 UPMC Sorbonne Univ 4 Pl Jussieu F-75005 Paris France|CNRS FR 3459 Reseau Stockage Electrochim Energie RS2E F-80039 Amiens France;

    CNRS FR 3459 Reseau Stockage Electrochim Energie RS2E F-80039 Amiens France;

    CNRS FR 3459 Reseau Stockage Electrochim Energie RS2E F-80039 Amiens France|Univ Montpellier CNRS UMR 5253 Inst Charles Gerhardt F-34090 Montpellier France;

    Coll France Chim Solide & Energie UMR 8260 F-75005 Paris France|Univ Paris 06 UPMC Sorbonne Univ 4 Pl Jussieu F-75005 Paris France|CNRS FR 3459 Reseau Stockage Electrochim Energie RS2E F-80039 Amiens France;

    Coll France Chim Solide & Energie UMR 8260 F-75005 Paris France|Univ Paris 06 UPMC Sorbonne Univ 4 Pl Jussieu F-75005 Paris France|CNRS FR 3459 Reseau Stockage Electrochim Energie RS2E F-80039 Amiens France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    anionic redox; Na-rich cathodes; ruthenium oxides; sodium-ion batteries;

    机译:阴离子氧化还原;富含阴离子的阴极;氧化钌;钠离子电池;

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