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首页> 外文期刊>Journal of the American Chemical Society >A Complete Ab Initio View of Orbach and Raman Spin-Lattice Relaxation in a Dysprosium Coordination Compound
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A Complete Ab Initio View of Orbach and Raman Spin-Lattice Relaxation in a Dysprosium Coordination Compound

机译:在镝配位化合物中的orbach和拉曼旋转晶格弛豫的完整ab初始视图

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摘要

The unique electronic and magnetic properties of lanthanide molecular complexes place them at the forefront of the race toward high-temperature single-molecule magnets and magnetic quantum bits. The design of compounds of this class has so far being almost exclusively driven by static crystal field considerations, with an emphasis on increasing the magnetic anisotropy barrier. Now that this guideline has reached its maximum potential, a deeper understanding of spin-phonon relaxation mechanisms presents itself as key in order to drive synthetic chemistry beyond simple intuition. In this work, we compute relaxation times fully ab initio and unveil the nature of all spin-phonon relaxation mechanisms, namely Orbach and Raman pathways, in a prototypical Dy single-molecule magnet. Computational predictions are in agreement with the experimental determination of spin relaxation time and crystal field anisotropy, and show that Raman relaxation, dominating at low temperature, is triggered by low-energy phonons and little affected by further engineering of crystal field axiality. A comprehensive analysis of spin-phonon coupling mechanism reveals that molecular vibrations beyond the ion's first coordination shell can also assume a prominent role in spin relaxation through an electrostatic polarization effect. Therefore, this work shows the way forward in the field by delivering a novel and complete set of chemically sound design rules tackling every aspect of spin relaxation at any temperature.
机译:镧系元素分子复合物的独特电子和磁性将它们放置在竞争的高温单分子磁体和磁性量子位的前沿。到目前为止,该类化合物的设计几乎完全由静态晶体现场考虑因素而推动,重点增加磁各向异性屏障。既然本指南已达到其最大潜力,更深入地了解Spin-Phonon弛豫机制,使其自身作为钥匙,以便推动超出简单直觉的合成化学。在这项工作中,我们在原型Dy分子磁体中计算放松时间,并揭示所有旋转声子放松机制,即orbach和拉曼途径的性质。计算预测与旋转弛豫时间和晶体场各向异性的实验确定,并表明,在低温下占据主导地位的拉曼松弛是由低能量声子触发的,并且受水晶场轴突的进一步工程的影响很小。 Spin-Phonon耦合机构的综合分析表明,超出离子的第一配位壳体之外的分子振动也可以通过静电极化效果瞄准旋转弛豫中的突出作用。因此,这项工作通过在任何温度下提供一种新颖的和完整的化学声音设计规则来提供新的和完整的化学声音设计规则来展示该领域的前进方向。

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  • 来源
    《Journal of the American Chemical Society》 |2021年第34期|13633-13645|共13页
  • 作者单位

    Department of Chemistry 'Ugo Schiff' INSTM Research Unit Universita degli Studi di Firenze 50019 Sesto F.no Italy;

    Department of Chemistry 'Ugo Schiff' INSTM Research Unit Universita degli Studi di Firenze 50019 Sesto F.no Italy;

    Department of Chemistry 'Ugo Schiff' INSTM Research Unit Universita degli Studi di Firenze 50019 Sesto F.no Italy Institute of Physical Chemistry University of Stuttgart 70569 Stuttgart Germany;

    Department of Chemistry 'Ugo Schiff' INSTM Research Unit Universita degli Studi di Firenze 50019 Sesto F.no Italy;

    Department of Chemistry 'Ugo Schiff' INSTM Research Unit Universita degli Studi di Firenze 50019 Sesto F.no Italy;

    School of Physics AMBER and CRANN Institute Trinity College Dublin 2 Ireland;

  • 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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