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Polyanion-type cathode materials for sodium-ion batteries

机译:用于钠离子电池的Polyanion型阴极材料

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摘要

Room-temperature sodium-ion batteries (SIBs) are regarded as promising candidates for smart grids and large-scale energy storage systems (EESs) due to their significant benefits of abundant and low-cost sodium resource. Among the previously reported cathode materials for SIBs, layered transition-metal oxides and polyanion-type materials are considered to be the most attractive options. Although many layered transition-metal oxides can provide high capacity due to their small molecular weight, their further application is hindered by low output voltage (mostly lower than 3.5 V), irreversible phase transition as well as storage instability. Comparatively, polyanion-type materials exhibit higher operating potentials due to the inductive effect of polyanion groups. Their robust 3D framework significantly decreases the structural variations during sodium ion de/intercalation. Moreover, the effect of strong X-O (X = S, P, Si, etc.) covalent bonds can effectively inhibit oxygen evolution. These advantages contribute to the superior cycle stability and high safety of polyanion-type materials. However, low electronic conductivity and limited capacity still restrict their further application. This review summarizes the recent progress of polyanion-type materials for SIBs, which include phosphates, fluorophosphates, pyrophosphates, mixed phosphates, sulfates, and silicates. We also discuss the remaining challenges and corresponding strategies for polyanion-type materials. We hope this review can provide some insights into the development of polyanionic materials.
机译:由于其丰富和低成本钠资源的显着益处,室温钠离子电池(SIBS)被视为智能电网和大型储能系统(EESS)的承诺候选人。在先前报道的SIBS的阴极材料中,层状过渡金属氧化物和聚阴离子型材料被认为是最具吸引力的选择。尽管许多分层过渡金属氧化物可以通过它们的小分子量提供高容量,但它们的进一步施用通过低输出电压(大多数低于3.5V),不可逆的相转变以及储存不稳定性阻碍。相比之下,由于多沉膜组的感应效果,聚阴离子型材料表现出更高的操作电位。它们的稳健3D框架显着降低了钠离子DE /嵌入过程中的结构变化。此外,强X-O(X = S,P,Si等)共价键可以有效地抑制氧气进化的影响。这些优点有助于优异的循环稳定性和多膜型材料的高安全性。然而,低电子电导率和有限的容量仍然限制了其进一步的应用。本综述总结了SIBs的多变型材料的最近进展,其包括磷酸盐,荧光磷酸盐,焦磷酸盐,混合磷酸盐,硫酸盐和硅酸盐。我们还讨论了剩余的挑战和相应的多变型材料策略。我们希望这篇评论能够对多苯磺因材料的发展提供一些见解。

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  • 来源
    《Chemical Society Reviews》 |2020年第8期|共36页
  • 作者单位

    Nankai Univ Coll Chem Renewable Energy Convers &

    Storage Ctr ReCast Key Lab Adv Energy Mat Chem Minist Educ Tianjin 300071 Peoples R China;

    Nankai Univ Coll Chem Renewable Energy Convers &

    Storage Ctr ReCast Key Lab Adv Energy Mat Chem Minist Educ Tianjin 300071 Peoples R China;

    Nankai Univ Coll Chem Renewable Energy Convers &

    Storage Ctr ReCast Key Lab Adv Energy Mat Chem Minist Educ Tianjin 300071 Peoples R China;

    Nankai Univ Coll Chem Renewable Energy Convers &

    Storage Ctr ReCast Key Lab Adv Energy Mat Chem Minist Educ Tianjin 300071 Peoples R China;

    Nankai Univ Coll Chem Renewable Energy Convers &

    Storage Ctr ReCast Key Lab Adv Energy Mat Chem Minist Educ Tianjin 300071 Peoples R China;

    Nankai Univ Coll Chem Renewable Energy Convers &

    Storage Ctr ReCast Key Lab Adv Energy Mat Chem Minist Educ Tianjin 300071 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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