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本文引用的文献

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Selection of oxygen reduction catalysts for secondary tri-electrode zinc-air batteries.用于二次三电极锌空气电池的氧还原催化剂的选择
Sci Rep. 2022 Apr 23;12(1):6696. doi: 10.1038/s41598-022-10671-5.
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Nanostructured, Metal-Free Electrodes for the Oxygen Reduction Reaction Containing Nitrogen-Doped Carbon Quantum Dots and a Hydroxide Ion-Conducting Ionomer.含氮掺杂碳量子点和氢氧化物离子导体的纳米结构、无金属氧还原反应电极。
Molecules. 2022 Mar 11;27(6):1832. doi: 10.3390/molecules27061832.
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The importance of electrode interfaces and interphases for rechargeable metal batteries.可充金属电池中电极界面和相间的重要性。
Nat Commun. 2021 Oct 29;12(1):6240. doi: 10.1038/s41467-021-26481-8.
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A rechargeable zinc-air battery based on zinc peroxide chemistry.一种基于过氧化锌化学的可充电锌空气电池。
Science. 2021 Jan 1;371(6524):46-51. doi: 10.1126/science.abb9554.
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Enhanced Cycling Performance of Rechargeable Zinc-Air Flow Batteries Using Potassium Persulfate as Electrolyte Additive.使用过硫酸钾作为电解液添加剂提高可充电锌空气流电池的循环性能。
Int J Mol Sci. 2020 Oct 2;21(19):7303. doi: 10.3390/ijms21197303.
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Recent Progress in Electrically Rechargeable Zinc-Air Batteries.可充电锌空气电池的最新进展
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Electrically Rechargeable Zinc-Air Batteries: Progress, Challenges, and Perspectives.可充电锌空气电池:进展、挑战与展望。
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Recent advances in zinc-air batteries.锌空气电池的最新进展。
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9
Li-O2 and Li-S batteries with high energy storage.高能量存储的锂-氧和锂-硫电池。
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用于锌空气电池负极的电沉积离聚物保护层

Electrodeposited Ionomer Protection Layer for Negative Electrodes in Zinc-Air Batteries.

作者信息

Kwarteng Papa K, Syahputra Suanto, Pasquini Luca, Vacandio Florence, Di Vona Maria Luisa, Knauth Philippe

机构信息

Aix Marseille Univ, CNRS, MADIREL (UMR 7246), Electrochemistry of Materials Group, Campus St Jérôme, 13013 Marseille, France.

Tor Vergata University of Rome, Department Industrial Engineering, Via del Politecnico 1, 00173 Roma, Italy.

出版信息

Membranes (Basel). 2023 Jul 20;13(7):680. doi: 10.3390/membranes13070680.

DOI:10.3390/membranes13070680
PMID:37505046
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10385867/
Abstract

The protection of zinc anodes in zinc-air batteries (ZABs) is an efficient way to reduce corrosion and Zn dendrite formation and improve cyclability and battery efficiency. Anion-conducting poly(N-vinylbenzyl N,N,N-trimethylammonium)chloride (PVBTMA) thin films were electrodeposited directly on zinc metal using cyclic voltammetry. This deposition process presents a combination of advantages, including selective anion transport in PVBTMA reducing zinc crossover, high interface quality by electrodeposition improving the corrosion protection of zinc and high ionomer stiffness opposing zinc dendrite perforation. The PVBTMA layer was observed by optical and electron microscopy, and the wettability of the ionomer-coated surface was investigated by contact angle measurements. ZABs with PVBTMA-coated Zn showed an appreciable and stable open-circuit voltage both in alkaline electrolyte (1.55 V with a Pt cathode) and in miniaturized batteries (1.31 V with a carbon paper cathode). Cycling tests at 0.5 mA/cm within voltage limits of 2.1 and 0.8 V gave a stable discharge capacity for nearly 100 cycles with a liquid electrolyte and more than 20 cycles in miniaturized batteries. The faster degradation of the latter ZAB was attributed to the clogging of the carbon air cathode and drying or carbonation of the electrolyte sorbed in a Whatman paper.

摘要

锌空气电池(ZABs)中锌阳极的保护是减少腐蚀和锌枝晶形成、提高循环性能和电池效率的有效方法。采用循环伏安法将阴离子导电的聚(N-乙烯基苄基N,N,N-三甲基氯化铵)(PVBTMA)薄膜直接电沉积在锌金属上。这种沉积过程具有多种优点,包括PVBTMA中的选择性阴离子传输减少锌的交叉,通过电沉积获得的高界面质量改善锌的腐蚀保护,以及高离聚物刚度防止锌枝晶穿孔。通过光学显微镜和电子显微镜观察PVBTMA层,并通过接触角测量研究离聚物涂层表面的润湿性。涂有PVBTMA的锌的ZABs在碱性电解质(铂阴极时为1.55 V)和小型化电池(碳纸阴极时为1.31 V)中均表现出可观且稳定的开路电压。在2.1 V和0.8 V的电压限制内以0.5 mA/cm进行循环测试,对于液体电解质,近100次循环给出了稳定的放电容量,对于小型化电池则超过20次循环。后一种ZAB更快的降解归因于碳空气阴极的堵塞以及吸附在Whatman纸中的电解质的干燥或碳化。