Suppr超能文献

采用液-电化学透射电子显微镜对钠离子电池中溶液介导的放电和充电过程进行原位监测。

Operando Monitoring of the Solution-Mediated Discharge and Charge Processes in a Na-O Battery Using Liquid-Electrochemical Transmission Electron Microscopy.

机构信息

Collège de France , 11 Place Marcelin Berthelot, 75231 Paris, France.

Réseau sur le Stockage Electrochimique de l'Energie (RS2E), FR CNRS 3459 , 33 rue Saint Leu, 80009 Amiens, France.

出版信息

Nano Lett. 2018 Feb 14;18(2):1280-1289. doi: 10.1021/acs.nanolett.7b04937. Epub 2018 Jan 31.

Abstract

Although in sodium-oxygen (Na-O) batteries show promise as high-energy storage systems, this technology is still the subject of intense fundamental research, owing to the complex reaction by which it operates. To understand the formation mechanism of the discharge product, sodium superoxide (NaO), advanced experimental tools must be developed. Here we present for the first time the use of a Na-O microbattery using a liquid aprotic electrolyte coupled with fast imaging transmission electron microscopy to visualize, in real time, the mechanism of NaO nucleation/growth. We observe that the formation of NaO cubes during reduction occurs by a solution-mediated nucleation process. Furthermore, we unambiguously demonstrate that the subsequent oxidation of NaO of which little is known also proceeds via a solution mechanism. We also provide insight into the cell electrochemistry via the visualization of an outer shell of parasitic reaction product, formed through chemical reaction at the interface between the growing NaO cubes and the electrolyte, and suggest that this process is responsible for the poor cyclability of Na-O batteries. The assessment of the discharge-charge mechanistic in Na-O batteries through operando electrochemical transmission electron microscopy visualization should facilitate the development of this battery technology.

摘要

虽然钠-氧(Na-O)电池作为高能量存储系统具有很大的发展潜力,但由于其复杂的工作反应,该技术仍然是基础研究的热点。为了了解放电产物氧化钠(NaO)的形成机制,必须开发先进的实验工具。在这里,我们首次提出使用液态非质子电解质耦合快速成像透射电子显微镜的 Na-O 微电池,实时可视化 NaO 成核/生长的机制。我们观察到,还原过程中 NaO 立方体的形成是通过溶液介导的成核过程发生的。此外,我们明确证明,随后对 NaO 的氧化反应(目前知之甚少)也通过溶液机制进行。我们还通过可视化在生长的 NaO 立方体和电解质之间的界面处发生化学反应形成的寄生反应产物的外壳,提供了对电池电化学的深入了解,并表明该过程是导致 Na-O 电池循环性能不佳的原因。通过原位电化学传输电子显微镜可视化评估 Na-O 电池的充放电机理,应有助于该电池技术的发展。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验