Semantic Scholar Open Access 2018 500 sitasi

Giant energy density and high efficiency achieved in bismuth ferrite-based film capacitors via domain engineering

Haowei Pan Jing Ma Ji Ma Qinghua Zhang Xiaozhi Liu +8 lainnya

Abstrak

Developing high-performance film dielectrics for capacitive energy storage has been a great challenge for modern electrical devices. Despite good results obtained in lead titanate-based dielectrics, lead-free alternatives are strongly desirable due to environmental concerns. Here we demonstrate that giant energy densities of ~70 J cm−3, together with high efficiency as well as excellent cycling and thermal stability, can be achieved in lead-free bismuth ferrite-strontium titanate solid-solution films through domain engineering. It is revealed that the incorporation of strontium titanate transforms the ferroelectric micro-domains of bismuth ferrite into highly-dynamic polar nano-regions, resulting in a ferroelectric to relaxor-ferroelectric transition with concurrently improved energy density and efficiency. Additionally, the introduction of strontium titanate greatly improves the electrical insulation and breakdown strength of the films by suppressing the formation of oxygen vacancies. This work opens up a feasible and propagable route, i.e., domain engineering, to systematically develop new lead-free dielectrics for energy storage.Dielectrics with high capacitive energy storage density are essential for modern electrical devices and pulsed power systems. Here, the authors realised superior energy storage performance in lead-free bismuth ferrite-based relaxor ferroelectric films through domain engineering.

Penulis (13)

H

Haowei Pan

J

Jing Ma

J

Ji Ma

Q

Qinghua Zhang

X

Xiaozhi Liu

B

Bo Guan

L

L. Gu

X

Xin Zhang

Y

Yujun Zhang

L

Liangliang Li

Y

Yang Shen

Y

Yuanhua Lin

C

C. Nan

Format Sitasi

Pan, H., Ma, J., Ma, J., Zhang, Q., Liu, X., Guan, B. et al. (2018). Giant energy density and high efficiency achieved in bismuth ferrite-based film capacitors via domain engineering. https://doi.org/10.1038/s41467-018-04189-6

Akses Cepat

Lihat di Sumber doi.org/10.1038/s41467-018-04189-6
Informasi Jurnal
Tahun Terbit
2018
Bahasa
en
Total Sitasi
500×
Sumber Database
Semantic Scholar
DOI
10.1038/s41467-018-04189-6
Akses
Open Access ✓