Phase Engineering via Aluminum Doping Enhances the Electrochemical Stability of Lithium‐Rich Cobalt‐Free Layered Oxides for Lithium‐Ion Batteries

Author:

De Sloovere Dries12ORCID,Mylavarapu Satish Kumar12,D'Haen Jan1,Thersleff Thomas3,Jaworski Aleksander3,Grins Jekabs3,Svensson Gunnar3,Stoyanova Radostina4,Jøsang Leif Olav5,Prakasha Kunkanadu Rajappa6,Merlo Maximiliano6,Martínez Elías6,Nel‐lo Pascual Marc6,Jacas Biendicho Jordi6,Van Bael Marlies K.12,Hardy An12

Affiliation:

1. Institute for Materials Research (imo‐Imomec) UHasselt and Imec Agoralaan, building D Diepenbeek 3590 Belgium

2. EnergyVille Thor Park 8320 Genk 3600 Belgium

3. Department of Materials and Environmental Chemistry Arrhenius Laboratory Stockholm University Stockholm 106 91 Sweden

4. Institute of General and Inorganic Chemistry Bulgarian Academy of Sciences Acad. G. Bonchev Str., bldg. 11 Sofia 1113 Bulgaria

5. Cerpotech Kvenildmyra 6 Heimdal 7093 Norway

6. Catalonia Institute for Energy Research‐IREC Sant Adrià de Besòs Barcelona 08930 Spain

Abstract

AbstractLithium‐rich, cobalt‐free oxides are promising potential positive electrode materials for lithium‐ion batteries because of their high energy density, lower cost, and reduced environmental and ethical concerns. However, their commercial breakthrough is hindered because of their subpar electrochemical stability. This work studies the effect of aluminum doping on Li1.26Ni0.15Mn0.61O2 as a lithium‐rich, cobalt‐free layered oxide. Al doping suppresses voltage fade and improves the capacity retention from 46% for Li1.26Ni0.15Mn0.61O2 to 67% for Li1.26Ni0.15Mn0.56Al0.05O2 after 250 cycles at 0.2 C. The undoped material has a monoclinic Li2MnO3‐type structure with spinel on the particle edges. In contrast, Al‐doped materials (Li1.26Ni0.15Mn0.61‐xAlxO2) consist of a more stable rhombohedral phase at the particle edges, with a monoclinic phase core. For this core‐shell structure, the formation of Mn3+ is suppressed along with the material's decomposition to a disordered spinel, and the amount of the rhombohedral phase content increases during galvanostatic cycling. Whereas previous studies generally provided qualitative insight into the degradation mechanisms during electrochemical cycling, this work provides quantitative information on the stabilizing effect of the rhombohedral shell in the doped sample. As such, this study provides fundamental insight into the mechanisms through which Al doping increases the electrochemical stability of lithium‐rich cobalt‐free layered oxides.

Funder

Bulgarian National Science Fund

Publisher

Wiley

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