English

Designing wake-up free ferroelectric capacitors based on the $\mathrm{HfO_2/ZrO_2}$ superlattice structure

Materials Science 2024-09-17 v1 Applied Physics

Abstract

The wake-up phenomenon widely exists in hafnia-based ferroelectric capacitors, which causes device parameter variation over time. Crystallization at higher temperatures have been reported to be effective in eliminating wake-up, but high temperature may yield the monoclinic phase or generate high concentration oxygen vacancies. In this work, a unidirectional annealing method is proposed for the crystallization of Hf0.5Zr0.5O2\mathrm{Hf_{0.5}Zr_{0.5}O_2} (HZO) superlattice ferroelectrics, which involves heating from the Pt/ZrO2\mathrm{Pt/ZrO_2} interface side. Nanoscale ZrO2\mathrm{ZrO_2} is selected to resist the formation of monoclinic phase, and the chemically inert Pt electrode can avoid the continuous generation of oxygen vacancies during annealing. It is demonstrated that 600oC\mathrm{600^oC} annealing only leads to a moderate content of monoclinic phase in HZO, and the TiN/HZO/Pt capacitor exhibits wake-up free nature and a 2Pr2P_\mathrm{r} value of 27.4 μC/cm2\mu\mathrm{C/cm^2}. On the other hand, heating from the TiN/HfO2\mathrm{TiN/HfO_2} side, or using 500oC\mathrm{500^oC} annealing temperature, both yield ferroelectric devices that require a wake-up process. The special configuration of Pt/ZrO2\mathrm{Pt/ZrO_2} is verified by comparative studies with several other superlattice structures and HZO solid-state solutions. It is discovered that heating from the Pt/HfO2\mathrm{Pt/HfO_2} side at 600oC\mathrm{600^oC} leads to high leakage current and a memristor behavior. The mechanisms of ferroelectric phase stabilization and memristor formation have been discussed. The unidirectional heating method can also be useful for other hafnia-based ferroelectric devices.

Keywords

Cite

@article{arxiv.2206.14393,
  title  = {Designing wake-up free ferroelectric capacitors based on the $\mathrm{HfO_2/ZrO_2}$ superlattice structure},
  author = {Na Bai and Kan-Hao Xue and Jinhai Huang and Jun-Hui Yuan and Wenlin Wang and Ge-Qi Mao and Lanqing Zou and Shengxin Yang and Hong Lu and Huajun Sun and Xiangshui Miao},
  journal= {arXiv preprint arXiv:2206.14393},
  year   = {2024}
}

Comments

16 pages, 7 figures