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    Hole-doping reduces the coercive field in ferroelectric hafnia

    Pravan Omprakash1,*, Gwan Yeong Jung2, Guodong Ren1, and Rohan Mishra1,2,†

    • *Contact author: o.pravan@wustl.edu
    • †Contact author: rmishra@wustl.edu

    Phys. Rev. Materials 10, 034416 – Published 31 March, 2026

    DOI: https://doi.org/10.1103/zhk4-flgd

    Abstract

    Ferroelectric hafnia (HfO2) holds promise for next-generation memory and logic applications because of its CMOS compatibility. However, the high coercive field required for polarization switching in HfO2 remains a critical challenge for efficient device operations. Using first-principles calculations and phenomenological modeling, we predict that hole-doping can reduce the coercive field from 8 MV/cm in undoped hafnia to 6 MV/cm in hafnia doped with 0.2 holes per formula unit (f.u.). In the absence of doping, the reversal of polarization of the Pca21 phase is preferred through the nonpolar, tetragonal P42/nmc phase. This switching pathway involves the coupling of three hard distortion modes that render undoped hafnia as an improper ferroelectric. The overall energy barrier through this pathway remains unchanged (∼80 meV/f.u.) upon hole-doping. However, the introduction of holes hardens the polar Γ2− distortion mode that connects the polar Pca21 phase to the nonpolar, orthorhombic Pbcm phase, and reduces the energy barrier from 180 meV/f.u. in undoped hafnia to 80 meV/f.u. at 0.2 holes/f.u. The activation of the latter switching pathway through the Pbcm phase can lead to a reversal in the polarization direction. Overall, hole-doping makes the switching pathway through the Pbcm phase competitive, and renders hafnia as a proper ferroelectric with a lower coercive field.

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