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Molecular Design Principles for Ferroelectrics: Ferroelectrochemistry

机译:铁电器的分子设计原理:铁电化学

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摘要

Ferroelectric materials have a variety of technological applications, as transducers, capacitors, sensors, etc. Great interest in molecular ferroelectrics has emerged because of their structural flexibility, tunability, and homochirality. However, the discoveries of molecular ferroelectrics are not abundant. The lack of chemical design is the main challenge in realizing new molecular ferroelectrics. Consequently, chemical design approaches, including the ideas of introducing quasi-spherical theory, homochirality, and H/F substitution, have been developed recently. Through these advanced methodologies, a wide range of ferroelectrics were successfully synthesized, changing the blind search into a targeted chemical design. In this Perspective, we aim to provide insight into the fundamental chemistry and physics of molecular ferroelectrics and propose the concept of "ferroelectrochemistry", concerned with the targeted design and performance optimization of molecular ferroelectrics from the chemical point of view. We start with the basic theories used in the modification of chemical structures for new molecular ferroelectrics, such as the quasi-spherical theory. After that, we focus on the fundamentals of homochirality from the perspective of chemistry and advantages of introducing a homochiral molecule within the scope of ferroelectrics. Further, we explore another design strategy, H/F substitution, as an analogue of the H/D isotope effect. The introduction of a F atom usually does not change the polar point group but may induce a minor structural disruption that enhances physical properties such as Curie temperature and spontaneous polarization. We hope our comprehensive studies on the targeted design and performance optimization strategies for molecular ferroelectrics may build up and enrich the content of ferroelectrochemistry.
机译:铁电材料具有各种技术应用,作为传感器,电容器,传感器等。由于其结构柔韧性,可调性和销售,因此出现了对分子铁电的极大兴趣。然而,分子铁电性的发现并不丰富。缺乏化学设计是实现新的分子铁电器的主要挑战。因此,最近开发了化学设计方法,包括引入准球面理论,纪念度和H / F替代的思想。通过这些先进的方法,成功地合成了广泛的铁电,将盲目搜索变为目标化学设计。在这种观点中,我们的目的是提供对分子铁电气的基本化学和物理学的洞察,并提出了“铁电化学”的概念,涉及来自化学观点的分子铁电器的目标设计和性能优化。我们从化学结构改造的基本理论开始,用于新的分子铁电解,例如准球性理论。之后,我们从化学和在铁电池范围内引入了冠本分子的化学和优势的角度,专注于销售的基础。此外,我们探讨了另一种设计策略,H / F替代,作为H / D同位素效应的类似物。 F原子的引入通常不会改变极性点组,但可能诱导较小的结构破坏,从而提高诸如居里温和自发极化的物理性质。我们希望我们对分子铁电解的目标设计和性能优化策略的全面研究可以积聚并丰富铁电化学的含量。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第36期|15205-15218|共14页
  • 作者单位

    Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 People's Republic of China;

    Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 People's Republic of China;

    Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 People's Republic of China;

    Jiangsu Key Laboratory for Science and Applications of Molecular Ferroelectrics Southeast University Nanjing 211189 People's Republic of China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 22:16:52

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