Nanomaterials (Dec 2023)

Effect of Domain Structure and Dielectric Interlayer on Switching Speed of Ferroelectric Hf<sub>0.5</sub>Zr<sub>0.5</sub>O<sub>2</sub> Film

  • Anastasia Chouprik,
  • Ekaterina Savelyeva,
  • Evgeny Korostylev,
  • Ekaterina Kondratyuk,
  • Sergey Zarubin,
  • Nikita Sizykh,
  • Maksim Zhuk,
  • Andrei Zenkevich,
  • Andrey M. Markeev,
  • Oleg Kondratev,
  • Sergey Yakunin

DOI
https://doi.org/10.3390/nano13233063
Journal volume & issue
Vol. 13, no. 23
p. 3063

Abstract

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The nanosecond speed of information writing and reading is recognized as one of the main advantages of next-generation non-volatile ferroelectric memory based on hafnium oxide thin films. However, the kinetics of polarization switching in this material have a complex nature, and despite the high speed of internal switching, the real speed can deteriorate significantly due to various external reasons. In this work, we reveal that the domain structure and the dielectric layer formed at the electrode interface contribute significantly to the polarization switching speed of 10 nm thick Hf0.5Zr0.5O2 (HZO) film. The mechanism of speed degradation is related to the generation of charged defects in the film which accompany the formation of the interfacial dielectric layer during oxidization of the electrode. Such defects are pinning centers that prevent domain propagation upon polarization switching. To clarify this issue, we fabricate two types of similar W/HZO/TiN capacitor structures, differing only in the thickness of the electrode interlayer, and compare their ferroelectric (including local ferroelectric), dielectric, structural (including microstructural), chemical, and morphological properties, which are comprehensively investigated using several advanced techniques, in particular, hard X-ray photoelectron spectroscopy, high-resolution transmission electron microscopy, energy dispersive X-ray spectroscopy, X-ray diffraction, and electron beam induced current technique.

Keywords