Reliable ferroelectricity in sol–gel‐derived BiFeO3 thin films below 200 nm

Author:

Gao Xuan1,Dai Le1,Liu Yang1,Wang Ke2ORCID,Karpinsky D. V.3,Liu Lisha1ORCID,Wang Yaojin1ORCID

Affiliation:

1. School of Materials Science and Engineering Nanjing University of Science and Technology Nanjing China

2. State Key Laboratory of New Ceramics and Fine Processing School of Materials Science and Engineering Tsinghua University Beijing China

3. Scientific and Practical Centre for Materials Research National Academy of Sciences of Belarus Minsk Belarus

Abstract

AbstractTo evaluate optimizing processing conditions for bismuth ferrite BiFeO3 (BFO) thin films with thicknesses below 200 nm on Pt(111)/Ti/SiO2/Si substrates. The impact of the amorphous components, as well as defects and elemental composition changes and microstructure evolution (i.e., grain size) as regulated by the treatment temperatures (475–600°C) on the ferroelectric and dielectric properties are investigated. The current work shows that with the smallest grain size and the least defects amount achieved in the film annealed at 550°C, the conductivity is compressed greatly. Such a temperature will also allow adequate ferroelectric switching by reducing the amorphous components, which remain the majority below 500°C and thus reinforce the polarization switching. The leakage path is deduced via crystallized grains in BFO thin films instead of the remaining including grain boundaries and amorphous components. The best remanent polarization of ∼60.4 μC·cm2 from PUND measurements excluding the leakage contribution at 500 kV·cm−1 and an excellent fatigue property of 106 cycles are achieved. In addition, broadened fabrication temperatures for amorphous‐protected polycrystalline BFO thin films from 525 to 575°C, exhibiting superior ferroelectricity than most previously reported BFO thin films below 200 nm, either derived by chemical or physical methods. Ultimately, it is suggested that for leaky ferroelectrics such as BFO, optimal annealing temperature should balance the amorphous components by reducing the annealing temperature while maintaining adequate crystallization for ferroelectric switching.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Jiangsu Province

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Materials Chemistry,Ceramics and Composites

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