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On the exceptional temperature stability of ferroelectric AlScN thin films

Materials Science 2024-06-19 v1

Abstract

Through its dependence on low symmetry crystal phases, ferroelectricity is inherently a property tied to the lower temperature ranges of the phase diagram for a given material. This paper presents conclusive evidence that in the case of ferroelectric AlScN, low temperature has to be seen as a purely relative term, since its ferroelectric-to-paraelectric transition temperature is confirmed to surpass 1100{\deg}C and thus the transition temperature of virtually any other thin film ferroelectric. We arrived at this conclusion through investigating the structural stability of 0.4 - 2 μ{\mu}m thick Al0.73_{0.73}Sc0.27_{0.27}N films grown on Mo bottom electrodes via in situ high-temperature X-ray diffraction and permittivity measurements. Our studies reveal the wurtzite-type structure of Al0.73_{0.73}Sc0.27_{0.27}N is conserved during the entire 1100{\deg}C annealing cycle, apparent through a constant c over a lattice parameter ratio. In situ permittivity measurements performed up to 1000{\deg}C strongly support this conclusion and include what could be the onset of a diverging permittivity only at the very upper end of the measurement interval. Our in situ measurements are well-supported by ex situ (scanning) transmission electron microscopy and polarization and capacity hysteresis measurements. These results confirm the structural stability on the sub-μ{\mu}m scale next to the stability of the inscribed polarization during the complete 1100{\deg}C annealing treatment. Thus, AlScN is the first readily available thin film ferroelectric with a temperature stability that surpasses virtually all thermal budgets occurring in microtechnology, be it during fabrication or the lifetime of a device - even in harshest environments.

Keywords

Cite

@article{arxiv.2105.08331,
  title  = {On the exceptional temperature stability of ferroelectric AlScN thin films},
  author = {MD Redwanul Islam and Niklas Wolff and Mohammed Yassine and Georg Schönweger and Björn Christian and Hermann Kohlstedt and Oliver Ambacher and Fabian Lofink and Lorenz Kienle and Simon Fichtner},
  journal= {arXiv preprint arXiv:2105.08331},
  year   = {2024}
}