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Ferroelectric nanoparticles, wires and tubes: synthesis, characterisation and applications

机译:铁电纳米粒子,电线和管材:合成,表征和应用

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摘要

Nanostructured materials are central to the evolution of future electronics and information technologies. Ferroelectrics have already been established as a dominant branch in the electronics sector because of their diverse application range such as ferroelectric memories, ferroelectric tunnel junctions, etc. The on-going dimensional downscaling of materials to allow packing of increased numbers of components onto integrated circuits provides the momentum for the evolution of nanostructured ferroelectric materials and devices. Nanoscaling of ferroelectric materials can result in a modification of their functionality, such as phase transition temperature or Curie temperature (T_c), domain dynamics, dielectric constant, coercive field, spontaneous polarisation and piezoelectric response. Furthermore, nanoscaling can be used to form high density arrays of monodomain ferroelectric nanostructures, which is desirable for the miniaturisation of memory devices. This review article highlights some research breakthroughs in the fabrication, characterisation and applications of nanoscale ferroelectric materials over the last decade, with priority given to novel synthetic strategies.
机译:纳米结构材料对于未来电子和信息技术的发展至关重要。由于铁电的应用范围广泛,例如铁电存储器,铁电隧道结等,铁电已被确立为电子领域的主导分支。材料的尺寸不断缩小以允许将更多数量的组件封装到集成电路上纳米结构铁电材料和器件的发展势头。铁电材料的纳米尺度可导致其功能的改变,例如相变温度或居里温度(T_c),畴动力学,介电常数,矫顽场,自发极化和压电响应。此外,纳米尺度可用于形成单畴铁电纳米结构的高密度阵列,这对于存储器件的小型化是期望的。这篇综述文章重点介绍了过去十年中在纳米铁电材料的制造,表征和应用方面的一些研究突破,其中优先考虑了新颖的合成策略。

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