数据挖掘,仪表板和统计:分子纳米磁铁化学设计的强大框架

Yan Duan, J. Coutinho, Lorena E. Rosaleny, S. Cardona, José J. Baldoví, A. Gaita-Ariño
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引用次数: 1

摘要

二十年来对镧系分子纳米磁体的深入研究,使分子的磁记忆从液氦到液氮的温度。在追求具有改进操作温度的新衍生物的过程中,已经提出了一些“合理”的策略,并通过理论家和实验家之间的知识流动转移加以应用。这些主要集中在磁性离子的选择和适当配位环境的设计上,无论是在磁性各向异性方面还是在分子振动方面。然而,大部分进展都是由意外发现、过于简化的理论和化学直觉取得的。为了得出控制分子纳米磁体在磁记忆方面的物理行为的化学设计关键参数的结论,我们在这里应用了最先进的推理统计分析,对一千多个已发表的实验进行了分析。我们的分析表明,由Arrhenius方程推导出的有效屏障与磁记忆表现出良好的相关性,并且目前提出的所有替代方案中只有两种有希望的策略,即双酞菁铽三明治和茂金属镝。此外,我们还提供了一个交互式仪表板,用于将收集到的数据可视化,其中包含2003年至2019年期间报告的所有病例。这项元研究旨在消除广泛存在的理论误解,并将使该领域的研究人员避免实验盲区。
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Data mining, dashboards and statistics: a powerful framework for the chemical design of molecular nanomagnets
Two decades of intensive research in lanthanide-based molecular nanomagnets have brought the magnetic memory in molecules from liquid helium to liquid nitrogen temperature. In the pursuit of new derivatives with improved operational temperatures, several "rational" strategies have been proposed and applied through a fluid transfer of knowledge between theoreticians and experimentalists. These have mainly focused on the choice of the magnetic ion and the design of an adequate coordination environment, both in terms of magnetic anisotropy and molecular vibrations. However, much of the progress has been achieved by serendipity, oversimplified theories and chemical intuition. In order to draw conclusions on the chemical design key parameters that govern the physical behavior of molecular nanomagnets in terms of magnetic memory, we apply here a state-of-the-art inferential statistical analysis to a body of over a thousand published experiments. Our analysis shows that the effective barrier derived from an Arrhenius equation displays an excellent correlation with the magnetic memory, and that there are only two promising strategies between all alternatives proposed so far, namely terbium bis-phthalocyaninato sandwiches and dysprosium metallocenes. In addition, we provide an interactive dashboard for visualizing the collected data, which contains all the reported cases between 2003 and 2019. This meta-study aims to dispel widespread theoretical misconceptions and will allow researchers in the field to avoid experimental blind alleys.
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