4.6 Article

Assessment of van der Waals inclusive density functional theory methods for layered electroactive materials

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 19, Issue 15, Pages 10133-10139

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c7cp00284j

Keywords

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Funding

  1. MINECO (Spain) [MTM2013-46553-C3-1-P, MTM2016-76329-R]
  2. MINECO grant [ENE2016-81020-R]
  3. Royal Society through the Newton Alumnus scheme
  4. Basque Government through the BERC program
  5. MINECO through BCAM Severo Ochoa accreditation [SEV-2013-0323]

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The discovery of computationally driven materials requires efficient and accurate methods. Density functional theory (DFT) meets these two requirements for many classes of materials. However, DFT-based methods have limitations. One significant shortcoming is the inadequate treatment of weak van der Waals (vdW) interactions, which are crucial for layered materials. Here we assess the performance of various vdW-inclusive DFT approaches for predicting the structure and voltage of layered electroactive materials for Li-ion batteries, considering a set of 20 different compounds. We find that the so-called optB86b-vdW density functional improves the agreement with the experimental data, closely followed by the latest generation of dispersion correction methods. These approaches yield average relative errors for the structural parameters smaller than 3%. The average deviations for redox potentials are below 0.15 V. Looking ahead, this study identifies accurate methods for Li-ion vdW bound systems, providing enhanced predictive power to DFT-assisted design for developing new types of electroactive materials in general.

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