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原位液体电化学透射电子显微镜电子衍射层析技术用于锂离子电池正极材料晶体结构测定

In Situ Electron Diffraction Tomography Using a Liquid-Electrochemical Transmission Electron Microscopy Cell for Crystal Structure Determination of Cathode Materials for Li-Ion batteries.

机构信息

EMAT , University of Antwerp , Groenenborgerlaan 171 , B-2020 Antwerp , Belgium.

Réseau sur le Stockage Electrochimique de l'Energie (RS2E) , CNRS FR 3459 , 80039 Amiens , France.

出版信息

Nano Lett. 2018 Oct 10;18(10):6286-6291. doi: 10.1021/acs.nanolett.8b02436. Epub 2018 Sep 14.

Abstract

We demonstrate that changes in the unit cell structure of lithium battery cathode materials during electrochemical cycling in liquid electrolyte can be determined for particles of just a few hundred nanometers in size using in situ transmission electron microscopy (TEM). The atomic coordinates, site occupancies (including lithium occupancy), and cell parameters of the materials can all be reliably quantified. This was achieved using electron diffraction tomography (EDT) in a sealed electrochemical cell with conventional liquid electrolyte (LP30) and LiFePO crystals, which have a well-documented charged structure to use as reference. In situ EDT in a liquid environment cell provides a viable alternative to in situ X-ray and neutron diffraction experiments due to the more local character of TEM, allowing for single crystal diffraction data to be obtained from multiphased powder samples and from submicrometer- to nanometer-sized particles. EDT is the first in situ TEM technique to provide information at the unit cell level in the liquid environment of a commercial TEM electrochemical cell. Its application to a wide range of electrochemical experiments in liquid environment cells and diverse types of crystalline materials can be envisaged.

摘要

我们通过原位透射电子显微镜(TEM)证明,在液体电解质中电化学循环过程中,锂电池阴极材料的单元晶胞结构的变化可以在仅几百纳米大小的颗粒上确定。材料的原子坐标、占据位置(包括锂的占据位置)和晶胞参数都可以可靠地定量。这是通过在具有传统液体电解质(LP30)和 LiFePO 晶体的密封电化学电池中使用电子衍射层析成像(EDT)来实现的,LiFePO 晶体具有有据可查的充电结构可作为参考。由于 TEM 的局部性质,液体环境原位 EDT 为原位 X 射线和中子衍射实验提供了可行的替代方法,允许从多相粉末样品和亚微米到纳米级的颗粒中获得单晶衍射数据。EDT 是第一个在商业 TEM 电化学电池的液体环境中提供单元晶胞级信息的原位 TEM 技术。可以预见,它将应用于液体环境电池和各种类型的结晶材料的广泛电化学实验中。

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