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

机译:通过领域工程,在基于铋铁氧体的薄膜电容器中实现了巨大的能量密度和高效率

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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.
机译:开发用于电容式能量存储的高性能薄膜电介质对现代电子设备来说是一个巨大的挑战。尽管在基于钛酸铅的电介质中获得了良好的结果,但是出于对环境的考虑,仍强烈希望使用无铅替代品。在这里,我们证明了无铅铋铁氧体-钛酸锶锶固溶体薄膜可通过领域工程获得约70?J?cm?3的巨大能量密度,以及高效率以及出色的循环和热稳定性。揭示了钛酸锶的掺入将铋铁氧体的铁电微区转变为高动态极性纳米区域,从而导致铁电到弛豫铁电的转变,同时提高了能量密度和效率。另外,钛酸锶的引入通过抑制氧空位的形成极大地改善了膜的电绝缘性和击穿强度。这项工作开辟了一条可行且可扩展的途径,即领域工程,以系统地开发用于储能的新型无铅电介质。

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