4.6 Article

Phase Properties of Different HfO2 Polymorphs: A DFT-Based Study

期刊

CRYSTALS
卷 12, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/cryst12010090

关键词

HfO2; DFT; hubbard; energy; defects

资金

  1. European Project Nanomaterials enabling smart energy harvesting for next-generation Internet-of-Things (NANO-EH) [951761 (FETPROACT-EIC-05-2019)]

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This study presents a detailed computational analysis of four HfO2 polymorphs, revealing their intrinsic properties and response characteristics. The obtained results provide important insights into the excited states phenomena of HfO2 polymorphs.
Background: Hafnium Dioxide (HfO2) represents a hopeful material for gate dielectric thin films in the field of semiconductor integrated circuits. For HfO2, several crystal structures are possible, with different properties which can be difficult to describe in detail from an experimental point of view. In this study, a detailed computational approach has been shown to present a complete analysis of four HfO2 polymorphs, outlining the intrinsic properties of each phase on the basis of atomistic displacements. Methods: Density functional theory (DFT) based methods have been used to accurately describe the chemical physical properties of the polymorphs. Corrective Hubbard (U) semi-empirical terms have been added to exchange correlation energy in order to better reproduce the excited-state properties of HfO2 polymorphs. Results: the monoclinic phase resulted in the lowest cohesive energy, while the orthorhombic showed peculiar properties due to its intrinsic ferroelectric behavior. DFT + U methods showed the different responses of the four polymorphs to an applied field, and the orthorhombic phase was the least likely to undergo point defects as oxygen vacancies. Conclusions: The obtained results give a deeper insight into the differences in excited states phenomena in relation to each specific HfO2 polymorph.

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