Al‐doped ZnO‐Coated LiNi1/3Mn1/3Co1/3O2 Powder Electrodes: The Effect of a Coating Layer on The Structural and Chemical Stability of The Electrode / Electrolyte Interface

Author:

Makvandi Ardavan1ORCID,Wolff Michael2,Lobe Sandra2,Heidrich Bastian3,Peterlechner Martin1,Gammer Christoph4,Uhlenbruck Sven2,Winter Martin35,Wilde Gerhard1

Affiliation:

1. Institute of Materials Physics University of Münster 48149 Münster Germany

2. Forschungszentrum Jülich GmbH, Institute of Energy and Climate Research, Materials Synthesis and Processing (IEK‐1) Jülich Aachen Research Alliance: JARA‐Energy 52425 Jülich Germany

3. MEET Battery Research Center, Institute of Physical Chemistry University of Münster 48149 Münster Germany

4. Erich Schmid Institute of Materials Science Austrian Academy of Sciences Leoben 8700 Austria

5. Helmholtz Institute Münster, IEK‐12 Forschungszentrum Jülich GmbH 48149 Münster Germany

Abstract

AbstractLiNi1/3Mn1/3Co1/3O2 (NMC‐111) is one of the most popular cathode materials in Li‐ion batteries. However, chemical and structural instabilities of the cathode/electrolyte interface at high charge cut‐off voltages cause capacity fading. Surface modifications using metal oxides are promising candidates to suppress capacity fading. Here a systematic study on the degradation mechanism of an uncoated NMC‐111 powder electrode is presented. Moreover, the effect of an Al‐doped ZnO (Al:ZnO) coating layer on the structural and chemical stabilities of NMC‐111 electrode cycled at high charge cut‐off voltages is analyzed using X‐ray photoelectron spectroscopy, scanning electron microscopy and analytical transmission electron microscopy as well as electrochemical testing. The coating is applied to commercial NMC‐111 powder using a microwave‐assisted sol‐gel synthesis method. In the case of uncoated NMC‐111 electrodes, pitting corrosion due to hydrofluoric acid attacking the electrode surface, cation mixing, and an irreversible phase transformation from a trigonal layered to a rock‐salt phase occurs, causing capacity fading. While, in the case of Al:ZnO – coated NMC‐111 electrodes, pitting corrosion, cation mixing, and the irreversible phase transformation are mitigated. Therefore, the capacity retention and rate capability are improved as the coating layer protects the electrode surface from the direct electrolyte exposure.

Funder

Deutsche Forschungsgemeinschaft

Bundesministerium für Wirtschaft und Energie

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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