Published January 19, 2021 | Version v1
Dataset Open

Analysis of minerals as electrode materials for Ca-based rechargeable batteries

  • 1. Departamento de Química Inorgánica, Facultad de Cc. Químicas, Universidad Complutense de Madrid, 28040, Madrid, Spain

* Contact person

Description

Rechargeable lithium-ion batteries dominate the consumer electronics and electric vehicle markets. However, concerns on Li availability have prompted the development of alternative high energy density electrochemical energy storage systems. Rechargeable batteries based on a Ca metal anode can exhibit advantages in terms of energy density, safety and cost. The development of rechargeable Ca metal batteries requires the identification of suitable high specific energy cathode materials. This work focuses on Ca-bearing minerals because they represent stable and abundant compounds. Suitable minerals should contain a transition metal able of being reversibly reduced and oxidized, which points to several major classes of silicates and carbonates: olivine (CaFeSiO4; kirschsteinite), pyroxene (CaFe/MnSi2O6; hedenbergite and johannsenite, respectively), garnet (Ca3Fe/Cr2Si3O12; andradite and uvarovite, respectively), amphibole (Ca2Fe5Si8O22(OH)2; ferroactinolite) and double carbonates (CaMn(CO3)2; kutnahorite and CaFe(CO3)2; ankerite). This work discusses their electrode characteristics based on crystal chemistry analysis and density functional theory (DFT) calculations. The results indicate that upon Ca deintercalation, compounds such as pyroxene, garnet and double carbonate minerals could display high theoretical energy densities (ranging from 780 to 1500 Wh/kg) with moderate structural modifications. As a downside, DFT calculations indicate a hampered Ca mobility in their crystal structures. The overall analysis then disregards olivine, garnet, pyroxene, amphibole and double carbonates as structural types for future Ca-cathode materials design.

Files

File preview

All files

Files (125.6 MiB)

Name Size
md5:9640fc1d51456880ee812c6787d591f1
178 Bytes Preview Download
md5:cc084f7947b76e5ef4f501dd30b5b66c
125.6 MiB Download
md5:b76a1ef7259e0694cbb715c4caa68683
449 Bytes Preview Download

References

Journal reference
A. Torres, F. J. Luque, J. Tortajada, M. E. Arroyo-de Dompablo, Scientific Reports 9, 9644 (2019), doi: 10.1038/s41598-019-46002-4