Your browser doesn't support javascript.
loading
New Insights on Singlet Oxygen Release from Li-Air Battery Cathode: Periodic DFT Versus CASPT2 Embedded Cluster Calculations.
Fasulo, Francesca; Massaro, Arianna; Muñoz-García, Ana B; Pavone, Michele.
Afiliação
  • Fasulo F; Department of Physics "E. Pancini", University of Naples Federico II, I-80126 Napoli, Italy.
  • Massaro A; Department of Chemical Sciences, University of Naples Federico II, I-80126 Napoli, Italy.
  • Muñoz-García AB; Department of Physics "E. Pancini", University of Naples Federico II, I-80126 Napoli, Italy.
  • Pavone M; National Reference Center for Electrochemical Energy Storage (GISEL)-INSTM, 50121 Florence, Italy.
J Chem Theory Comput ; 19(15): 5210-5220, 2023 Aug 08.
Article em En | MEDLINE | ID: mdl-37433035
ABSTRACT
Li-air batteries are a promising energy storage technology for large-scale applications, but the release of highly reactive singlet oxygen (1O2) during battery operation represents a main concern that sensibly limits their effective deployment. An in-depth understanding of the reaction mechanisms underlying the 1O2 formation is crucial to prevent its detrimental reactions with the electrolyte species. However, describing the elusive chemistry of highly correlated species such as singlet oxygen represents a challenging task for state-of-the-art theoretical tools based on density functional theory. Thus, in this study, we apply an embedded cluster approach, based on CASPT2 and effective point charges, to address the evolution of 1O2 at the Li2O2 surface during oxidation, i.e., the battery charging process. Based on recent hypothesis, we depict a feasible O22-/O2-/O2 mechanisms occurring from the (112̅0)-Li2O2 surface termination. Our highly accurate calculations allow for the identification of a stable superoxide as local minimum along the potential energy surface (PES) for 1O2 release, which is not detected by periodic DFT. We find that 1O2 release proceeds via a superoxide intermediate in a two-step one-electron process or another still accessible pathway featuring a one-step two-electron mechanism. In both cases, it represents a feasible product of Li2O2 oxidation upon battery charging. Thus, tuning the relative stability of the intermediate superoxide species can enable key strategies aiming at controlling the detrimental development of 1O2 for new and highly performing Li-air batteries.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article