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An in-depth insight of a highly reversible and dendrite-free Zn metal anode in an hybrid electrolyte

机译:在混合电解质中的高度可逆和无树枝状Zn金属阳极的深入介绍

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摘要

Zn metal is considered as one of the most promising anodes for aqueous high-energy batteries owing to its high theoretical capacity, low redox potential, abundant resource, and low toxicity. However, Zn metal anodes (ZMAs) still suffer from a few challenging problems such as low irreversibility and dendrite growth during plating/stripping. In this study, we identify and quantify the composition of inactive Zn responsible for capacity loss, which shows that it contains 57 mol% of unreacted Zn-0 and 43 mol% Zn-containing byproducts. Based on this quantitative result, we developed an environmentally friendly water/glycerol hybrid electrolyte, which enable the dendrite-free plating/stripping of Zn with a high coulombic efficiency of 97.6% over 500 cycles. A symmetric Zn||Zn cell can be repeatedly plated/stripped for more than 1500 h at 1 mA cm(-2). Glycerol can suppress the side reactions caused by water in the hybrid electrolyte because of the strong binding interactions between glycerol and the Zn metal. The molecular-scale modeling simulations and electrochemical analysis reveal that the dense and uniform Zn electro-deposition is related to the Zn2+-solvation-sheath structure. The fundamental understanding of ZMAs in aqueous and hybrid electrolytes opens a viable route for the highly efficient utilization of Zn with high efficiency and safety.
机译:金属锌因其理论容量大、氧化还原电位低、资源丰富、低毒等优点,被认为是最有前途的水性高能电池阳极之一。然而,锌金属阳极(ZMA)在电镀/剥离过程中仍面临一些挑战性问题,如不可逆性低和枝晶生长。在这项研究中,我们确定并量化了导致容量损失的非活性锌的组成,这表明它含有57 mol%的未反应锌-0和43 mol%的含锌副产物。基于这一定量结果,我们开发了一种环境友好的水/甘油混合电解液,该电解液能够在500次循环中实现锌的无枝晶电镀/剥离,库仑效率高达97.6%。对称Zn | | Zn电池可以在1mA-cm(-2)下重复电镀/剥离1500小时以上。由于甘油与锌金属之间的强结合作用,甘油可以抑制混合电解质中水引起的副反应。分子模拟和电化学分析表明,致密、均匀的锌电沉积与Zn2+的溶剂化鞘层结构有关。对水溶液和混合电解质中ZMAs的基本认识为高效、安全地利用锌开辟了一条可行的途径。

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    Shanghai Univ Sch Environm &

    Chem Engn Shanghai 200444 Peoples R China;

    Univ Wollongong Inst Superconducting &

    Elect Mat Australian Inst Innovat Mat Wollongong NSW 2522 Australia;

    Shanghai Univ Sch Environm &

    Chem Engn Shanghai 200444 Peoples R China;

    Univ Wollongong Inst Superconducting &

    Elect Mat Australian Inst Innovat Mat Wollongong NSW 2522 Australia;

    Shanghai Univ Sch Environm &

    Chem Engn Shanghai 200444 Peoples R China;

    Shanghai Univ Shanghai Appl Radiat Inst Shanghai 200444 Peoples R China;

    Shanghai Univ Shanghai Appl Radiat Inst Shanghai 200444 Peoples R China;

    Univ Wollongong Inst Superconducting &

    Elect Mat Australian Inst Innovat Mat Wollongong NSW 2522 Australia;

    Univ Wollongong Inst Superconducting &

    Elect Mat Australian Inst Innovat Mat Wollongong NSW 2522 Australia;

    Shanghai Univ Sch Environm &

    Chem Engn Shanghai 200444 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
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