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首页> 外文期刊>ACS applied materials & interfaces >Mechanism of Zn-Ion Intercalation/Deintercalation in a Zn-Polypyrrole Secondary Battery in Aqueous and Bio-Ionic liquid Electrolytes
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Mechanism of Zn-Ion Intercalation/Deintercalation in a Zn-Polypyrrole Secondary Battery in Aqueous and Bio-Ionic liquid Electrolytes

机译:Zn离子嵌入/脱嵌在水性和生物离子液体电解质中Zn-聚吡咯二次电池中的机理

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Zn-ion batteries(ZIB) have recently emerged as a promising and rather cheap alternative to Li-ion batteries. However, the divalent charge of Zn limits the choice of cathode materials, whereas the choice of electrolyte is limited by hydrogen-evolution reaction. Polymer cathodes have been shown to be a promising material for ZIB. In this paper, we have studied in detail a Zn/polypyrrole battery in both aqueous and bio-ionic liquid-water mixture electrolytes. From in situ Raman spectroelec-trochemistry, it was observed that in aqueous solution, Zn intercalation/deintercalation takes place by a two-step mechanism, whereas a single-step mechanism for Zn storage was involved in bio-ionic liquid-water mixture electrolytes. The charge-discharge measurements showed a higher Zn-storage capacity in the mixture of bio-ionic liquid-water electrolyte compared to the aqueous electrolyte. However, with cycling, a capacity loss was observed. Post analysis of the polymer after cycling showed that a phase transformation has taken place in the polymer with Zn ions trapped in the polymer matrix that decreased the Zn-storage capacity. Furthermore, the Zn anode showed the formation of Zn nanoflakes from aqueous electrolytes that might lead to dendritic growth, whereas dendrite-free Zn nanoparticles were observed on using the bio-ionic liquid-water electrolyte.
机译:Zn离子电池(Zib)最近被出现为对锂离子电池的有希望和相当便宜的替代品。然而,Zn的二价电荷限制了阴极材料的选择,而电解质的选择受氢进化反应的限制。已显示聚合物阴极是Zib的有希望的材料。在本文中,我们已经详细研究了水和生物离子液 - 水混合物电解质中的Zn /聚吡咯电池。从原位拉曼光谱干细胞中,观察到,在水溶液中,通过两步机制发生Zn插层/脱嵌,而Zn储存的单步机制涉及生物离子液 - 水混合物电解质。与含水电解质相比,电荷放电测量显示在生物离子液体 - 水电解质的混合物中较高的Zn储存能力。然而,通过循环,观察到容量损失。循环后聚合物的发布分析表明,在聚合物中捕获在聚合物基质中的聚合物中已经进行了相变化,该聚合物基质降低了Zn储存能力。此外,Zn阳极表明,从可能导致树突生长的水性电解质中形成Zn纳米薄片,而使用生物离子液体 - 水电解质观察到树突式无Zn纳米颗粒。

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