提高储能性能的超薄多层薄膜

IF 19.3 1区 材料科学 Q1 CHEMISTRY, PHYSICAL
Xin Zhang , Liang Shu , Ziqi Yang , Lisha Liu , Fangyuan Zhu , Hongliang Wang , Yue-Yu-Shan Cheng , Yu Huang , Jing-Feng Li
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引用次数: 0

摘要

微电子器件的快速发展使人们越来越关注利用电介质储能薄膜的快速充放电电容器。然而,由于最大极化(Pmax)和击穿强度(Eb)之间固有的负相关关系,这些电介质薄膜的能量密度仍然是一个关键的限制因素。本研究展示了具有超薄层结构的多层薄膜的增强储能性能。更多异质界面的引入提高了 Eb,而界面处的扩散和应变促进了晶格畸变和相变,从而显著提高了 Pmax。值得注意的是,在每层 6.7 纳米的 BiFeO3/SrTiO3 多层结构中,能量密度达到 65.8 J/cm3,效率高达 72.3%,超过了大多数由简单成分组成的多层薄膜的性能。这种超薄多层结构同时提高了 Pmax 和 Eb,为开发高性能介电材料提供了一条前景广阔的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ultra-thin multilayer films for enhanced energy storage performance

Ultra-thin multilayer films for enhanced energy storage performance

The rapid progress in microelectronic devices has brought growing focus on fast charging-discharging capacitors utilizing dielectric energy storage films. However, the energy density of these dielectric films remains a critical limitation due to the inherent negative correlation between their maximum polarization (Pmax) and breakdown strength (Eb). This study demonstrates enhanced energy storage performance in multilayer films featuring an ultra-thin layer structure. The introduction of a greater number of heterogeneous interfaces improves Eb, while lattice distortion and phase transitions, facilitated by diffusion and strain at interfaces, contribute significantly to the enhancement of Pmax. Remarkably, an energy density of 65.8 J/cm3 with an efficiency of 72.3% was achieved in a 6.7 nm-per-layer BiFeO3/SrTiO3 multilayer configuration, surpassing the performance of most multilayer films composed of simple constituents. This ultra-thin multilayer structure, which simultaneously promoted Pmax and Eb, provides a promising avenue for the development of high-performance dielectric materials.

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来源期刊
ACS Energy Letters
ACS Energy Letters Energy-Renewable Energy, Sustainability and the Environment
CiteScore
31.20
自引率
5.00%
发文量
469
审稿时长
1 months
期刊介绍: ACS Energy Letters is a monthly journal that publishes papers reporting new scientific advances in energy research. The journal focuses on topics that are of interest to scientists working in the fundamental and applied sciences. Rapid publication is a central criterion for acceptance, and the journal is known for its quick publication times, with an average of 4-6 weeks from submission to web publication in As Soon As Publishable format. ACS Energy Letters is ranked as the number one journal in the Web of Science Electrochemistry category. It also ranks within the top 10 journals for Physical Chemistry, Energy & Fuels, and Nanoscience & Nanotechnology. The journal offers several types of articles, including Letters, Energy Express, Perspectives, Reviews, Editorials, Viewpoints and Energy Focus. Additionally, authors have the option to submit videos that summarize or support the information presented in a Perspective or Review article, which can be highlighted on the journal's website. ACS Energy Letters is abstracted and indexed in Chemical Abstracts Service/SciFinder, EBSCO-summon, PubMed, Web of Science, Scopus and Portico.
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