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Visualization of Light Elements using 4D STEM: The Layered-to-Rock Salt Phase Transition in LiNiO_2 Cathode Material

机译:使用4D杆的光元素可视化:LINIO_2阴极材料中的层状盐相转变

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摘要

The layered oxide LiNiO2 (LNO) has been extensively investigated as a cathode active material for lithium-ion batteries. Despite LNO's high gravimetric capacity, instability issues hinder its commercialization. It suffers from capacity loss during electrochemical cycling and is difficult to synthesize without defects. This is related to poor structural stability, leading to decomposition into the parent rock-salt-type oxide. In order to understand such phase transformations and to develop measures to inhibit them, the development of techniques able to image all atoms is crucial. In this study, the use of a fast, pixelated detector and 4D imaging in scanning transmission electron microscopy are explored to tackle this challenge. Selecting specific angular regions in the diffraction patterns and calculating virtual annular bright-field images significantly enhances the contrast of the lithium atoms, such that all atoms are visible even in realistic samples. The developed technique is applied to image the layered-to-rock salt phase transition region. The data show that in this region, nickel atoms are in tetrahedral positions and the oxygen atoms are asymmetrically distributed. Taken together, the results shed light on the phase transformation mechanism at the atomic scale and can guide future research toward stabilizing LNO.
机译:层状氧化物LiNiO 2(LNO)已被广泛研究作为锂离子电池的阴极活性材料。尽管LNO的重量容量高,但不稳定问题会阻碍其商业化。电化学循环期间的容量损失遭受,并且难以合成而没有缺陷。这与结构稳定性差,导致分解成母岩盐型氧化物。为了理解这种相变并发展措施来抑制它们,能够图像的技术的发展至关重要。在该研究中,探讨了在扫描透射电子显微镜中使用快速,像素化检测器和4D成像以解决这一挑战。在衍射图案中选择特定的角区域并计算虚拟环形亮场图像显着增强了锂原子的对比度,使得即使在现实样品中也可见所有原子。开发技术应用于图像层岩盐相过渡区域。数据显示,在该区域中,镍原子处于四面体位置,并且氧原子是不对称分布的。连胜,结果阐明了原子规模的相变机制,可以指导未来的稳定LNO研究。

著录项

  • 来源
    《Advanced energy materials》 |2020年第25期|2001026.1-2001026.9|共9页
  • 作者单位

    Philipps Univ Marburg Mat Sci Ctr WZMW Hans Meerwein Str D-35032 Marburg Germany|Philipps Univ Marburg Dept Phys Hans Meerwein Str D-35032 Marburg Germany;

    Karlsruhe Inst Technol KIT Inst Nanotechnol Battery & Electrochem Lab Hermann von Helmholtz Pl 1 D-76344 Eggenstein Leopoldshafen Germany|BASF SE Carl Bosch Str 38 D-67056 Ludwigshafen Germany;

    Philipps Univ Marburg Mat Sci Ctr WZMW Hans Meerwein Str D-35032 Marburg Germany|Philipps Univ Marburg Dept Phys Hans Meerwein Str D-35032 Marburg Germany;

    Philipps Univ Marburg Mat Sci Ctr WZMW Hans Meerwein Str D-35032 Marburg Germany|Philipps Univ Marburg Dept Phys Hans Meerwein Str D-35032 Marburg Germany;

    Karlsruhe Inst Technol KIT Inst Nanotechnol Battery & Electrochem Lab Hermann von Helmholtz Pl 1 D-76344 Eggenstein Leopoldshafen Germany|BASF SE Carl Bosch Str 38 D-67056 Ludwigshafen Germany;

    Karlsruhe Inst Technol KIT Inst Nanotechnol Battery & Electrochem Lab Hermann von Helmholtz Pl 1 D-76344 Eggenstein Leopoldshafen Germany;

    Philipps Univ Marburg Mat Sci Ctr WZMW Hans Meerwein Str D-35032 Marburg Germany|Philipps Univ Marburg Dept Phys Hans Meerwein Str D-35032 Marburg Germany;

    Karlsruhe Inst Technol KIT Inst Nanotechnol Battery & Electrochem Lab Hermann von Helmholtz Pl 1 D-76344 Eggenstein Leopoldshafen Germany|Justus Liebig Univ Inst Phys Chem Heinrich Buff Ring 17 D-35392 Giessen Germany|Justus Liebig Univ Ctr Mat Res Heinrich Buff Ring 17 D-35392 Giessen Germany;

    Philipps Univ Marburg Mat Sci Ctr WZMW Hans Meerwein Str D-35032 Marburg Germany|Philipps Univ Marburg Dept Phys Hans Meerwein Str D-35032 Marburg Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    4D scanning TEM; Li-ion batteries; LNO; phase transformations;

    机译:4D扫描TEM;锂离子电池;LNO;相变;

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