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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >A review on hybrid nanolaminate materials synthesized by deposition techniques for energy storage applications
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A review on hybrid nanolaminate materials synthesized by deposition techniques for energy storage applications

机译:沉积技术合成纳米复合材料在储能应用中的研究进展

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摘要

Nanostructured materials such as nanocomposites and nanolaminates are currently of intense interest in modern materials research. Nanolaminate materials are fully dense, ultra-fine grained solids that exhibit a high concentration of interface defects. They may be developed for engineering applications that take advantage of enhanced mechanical properties or for devices such as energy storage and memory storage capacitors. Nanolaminates can be grown using atom-by-atom deposition techniques that are designed with different stacking sequences and layer thicknesses. The properties of fabricated nanolaminates depend on their compositions and thicknesses. These can be demonstrated within the synthesis process by thickness control of each layer and interfacial chemical reaction between layers, in fact, dielectrics with the formed thin layer have efficient dielectric constant and high insulation characteristics. Dielectric materials with giant dielectric constants can be fabricated as modified single, binary and perovskite oxides. A review of the advantages offered by nanolaminate structures for high performance energy storage devices is presented. Developments of dielectric materials that are formed from a thin layer approach are evaluated. The influence of the interface layer on the dielectric constant of nanolaminate films is assessed from the perspective of conferring a giant dielectric constant and high insulation characteristics. The incorporation of dopants and site-engineering techniques, as well as
机译:纳米结构材料,例如纳米复合材料和纳米层压材料,目前在现代材料研究中引起了极大的兴趣。纳米层压材料是完全致密的超细颗粒固体,显示出高浓度的界面缺陷。它们可以为利用增强的机械性能的工程应用而开发,也可以为诸如能量存储和存储电容器之类的设备开发。纳米层压材料可以使用逐原子沉积技术生长,该技术设计为具有不同的堆叠顺序和层厚。制成的纳米层压板的性能取决于其组成和厚度。这些可以在合成过程中通过控制每一层的厚度和各层之间的界面化学反应来证明,实际上,具有形成的薄层的电介质具有有效的介电常数和高绝缘特性。具有巨大介电常数的介电材料可以制成改性的单,二和钙钛矿氧化物。本文介绍了纳米层压结构为高性能储能设备提供的优势。评估了由薄层方法形成的介电材料的发展。从赋予巨大的介电常数和高绝缘特性的角度评估了界面层对纳米层压膜介电常数的影响。掺入掺杂剂和现场工程技术,以及

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