Designing Lead-Free Antiferroelectrics for Energy Storage

ORAL

Abstract

Dielectric capacitors, although presenting faster charging/discharging rates and better stability compared with supercapacitors or batteries, are limited in applications due to their low energy density. Antiferroelectric compounds, however, show great promise due to their atypical P-E curves. Here we report our first-principles-based theoretical predictions that Bi1-xRxFeO3 systems (R=Nd in this work) can potentially allow high energy densities (100-150 J cm-3) and efficiencies (80–88%) for electric fields that may be within the range of feasibility upon experimental advances (2-3 MV cm-1). Additionally, a simple model is derived to describe the energy density and efficiency of a general antiferroelectric material, providing a framework to assess the effect on the storage properties of variations in doping, electric field magnitude and direction, epitaxial strain, temperature, etc., which can facilitate future search of antiferroelectric materials for energy storage [1]. [1] Xu, Íñiguez, Bellaiche, Nat. Commun. 8, 15682 (2017)

*Department of Energy, Office of Basic Energy Sciences, ER-46612 (B.X.), Air Force Office of Scientific Research FA9550-16-1-0065 (L.B.), and FNR Luxembourg Grants FNR/P12/4853155/Kreisel CO-FERMAT (J.Í) and INTER/MOBILITY/15/9890527 GREENOX (L.B. and J.Í.).

Presenters

  • Bin Xu

    • University of Arkansas

Authors

  • Bin Xu

    • University of Arkansas
  • Jorge Íñiguez

    • Luxembourg Institute of Science and Technology
    • Matls Res & Tech, Luxembourg Institute of Sci & Tech
  • Laurent Bellaiche

    • University of Arkansas
    • Physics Department and Institute for Nanoscience and Engineering