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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Kinetic analysis and alloy designs for metal/metal fluorides toward high rate capability for all-solid-state fluoride-ion batteries
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Kinetic analysis and alloy designs for metal/metal fluorides toward high rate capability for all-solid-state fluoride-ion batteries

机译:用于全固态氟离子电池的金属/金属氟化物的金属/金属氟化物的动力学分析和合金设计

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摘要

New concepts for electrochemical energy storage devices are required to handle the physicochemical energy density limit that Li-ion batteries are approaching. All-solid-state fluoride-ion batteries (FIBs), in which monovalent fluoride anions are employed as charge carriers, are regarded as attractive options, and metallic Cu has been proved to be a promising cathode material. However, the rate capability is currently low and kinetic factors associated with the Cu/CuF2 reaction are not clearly understood, and the rate-determining step has not yet been identified. Herein, we present the kinetic analyses of a Cu thin-film cathode with a phase-boundary-controlled one-dimensional phase transition process via the Kolmogorov-Johnson-Mehl-Avrami equation. Concerning the capacity fading caused by the repeated volume expansion/contraction and the consequent interfacial contact loss, a Cu-Au alloy with a reduced lattice mismatch was designed and verified to be efficient to enable fast phase-transition kinetics along with stable cyclabilities, which opens new possibilities in cathode design for all-solid-state FIBs.
机译:为了应对锂离子电池即将达到的物理化学能量密度极限,需要电化学储能装置的新概念。全固态氟离子电池(FIB)采用一价氟化物阴离子作为电荷载体,被认为是有吸引力的选择,金属铜已被证明是一种很有前途的阴极材料。然而,速率能力目前较低,与Cu/CuF2反应相关的动力学因素尚不清楚,速率决定步骤尚未确定。在此,我们通过Kolmogorov-Johnson-Mehl-Avrami方程对具有相界控制的一维相变过程的铜薄膜阴极进行了动力学分析。考虑到重复体积膨胀/收缩导致的容量衰减以及由此产生的界面接触损失,设计了一种晶格失配减少的Cu-Au合金,并验证了该合金能够有效地实现快速相变动力学和稳定的循环能力,这为全固态FIB的阴极设计开辟了新的可能性。

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    Kyoto Univ Grad Sch Human &

    Environm Studies Sakyo Ku Yoshida Nihonmatsu Cho Kyoto 6068501 Japan;

    Kyoto Univ Grad Sch Human &

    Environm Studies Sakyo Ku Yoshida Nihonmatsu Cho Kyoto 6068501 Japan;

    Kyoto Univ Grad Sch Human &

    Environm Studies Sakyo Ku Yoshida Nihonmatsu Cho Kyoto 6068501 Japan;

    Kyoto Univ Grad Sch Human &

    Environm Studies Sakyo Ku Yoshida Nihonmatsu Cho Kyoto 6068501 Japan;

    Kyoto Univ Grad Sch Human &

    Environm Studies Sakyo Ku Yoshida Nihonmatsu Cho Kyoto 6068501 Japan;

    Kyoto Univ Grad Sch Human &

    Environm Studies Sakyo Ku Yoshida Nihonmatsu Cho Kyoto 6068501 Japan;

    Kyoto Univ Grad Sch Human &

    Environm Studies Sakyo Ku Yoshida Nihonmatsu Cho Kyoto 6068501 Japan;

    Toyota Motor Co Ltd Battery Res Div Higashifuji Tech Ctr 1200 Mishuku Shizuoka 4101193 Japan;

    Toyota Motor Co Ltd Battery Res Div Higashifuji Tech Ctr 1200 Mishuku Shizuoka 4101193 Japan;

    Kyoto Univ Grad Sch Human &

    Environm Studies Sakyo Ku Yoshida Nihonmatsu Cho Kyoto 6068501 Japan;

    Kyoto Univ Grad Sch Human &

    Environm Studies Sakyo Ku Yoshida Nihonmatsu Cho Kyoto 6068501 Japan;

    Kyoto Univ Grad Sch Human &

    Environm Studies Sakyo Ku Yoshida Nihonmatsu Cho Kyoto 6068501 Japan;

    Tohoku Univ Inst Multidisciplinary Res Adv Mat Aoba Ku 2-1-1 Katahira Sendai Miyagi 9808577 Japan;

    Kyoto Univ Grad Sch Human &

    Environm Studies Sakyo Ku Yoshida Nihonmatsu Cho Kyoto 6068501 Japan;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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