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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Multireference Ab Initio Studies of Magnetic Properties of Terbium-Based Single-Molecule Magnets
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Multireference Ab Initio Studies of Magnetic Properties of Terbium-Based Single-Molecule Magnets

机译:多引导AB初始铽的单分子磁体磁性性能研究

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We investigate how different chemical environments influence magnetic properties of terbium(III) (Tb)-based single-molecule magnets (SMMs), using first-principles relativistic multireference methods. Recent experiments showed that Tb-based SMMs can have exceptionally large magnetic anisotropy and that they can be used for experimental realization of quantum information applications, with a judicious choice of chemical environment. Here, we perform complete active space self-consistent field calculations including relativistic spin-orbit interaction for representative Tb-based SMMs such as TbPc2 and TbPcNc in three charge states. We calculate the low-energy electronic structure from which we compute the Tb crystal-field (CF) parameters and construct an effective pseudospin Hamiltonian. Our calculations show that the ligand type and fine points of molecular geometry do not affect the gap between the ground-state and first-excited doublets, whereas the latter varies weakly with oxidation number. On the other hand, higher-energy levels have a strong dependence on all these characteristics. For neutral TbPc2 and TbPcNc molecules, the Tb magnetic moment and ligand spin are parallel to each other and the coupling strength between them does not depend much on the ligand type and details of the atomic structure. However, ligand distortion and molecular symmetry play a crucial role in transverse CF parameters which lead to tunnel splitting. The tunnel splitting induces quantum tunneling of magnetization by itself or by combining with other processes. Our results provide insights into the mechanisms of magnetization relaxation in the representative Tb-based SMMs.
机译:我们研究了不同的化学环境如何利用第一原理相对论多引导方法影响铽(III)(TB)的单分子磁体(SMM)的磁性。最近的实验表明,基于TB的SMM可以具有异常大的磁各向异性,并且它们可用于量子信息应用的实验性实现,具有明智的化学环境。这里,我们执行完整的主动空间自我一致性场计算,包括用于基于代表性的TB的SMM的相对论自旋轨道交互,例如三个充电状态的TBPC2和TBPCNC。我们计算了从中计算TB晶体场(CF)参数的低能量电子结构,并构建有效的Pseudospin Hamiltonian。我们的计算表明,分子几何形状的配体型和精细点不会影响地面和第一激发双峰之间的间隙,而后者与氧化数弱变化。另一方面,更高能量水平对所有这些特征具有很强的依赖性。对于中性TBPC2和TBPCNC分子,Tb磁矩和配体旋转彼此平行,并且它们之间的耦合强度不依赖于原子结构的配体类型和细节。然而,配体变形和分子对称在横向CF参数中起着至关重要的作用,这导致隧道分裂。隧道分离自身或通过与其他过程组合来引起磁化量的量子隧道。我们的结果为基于代表TB的SMMS中的磁化松弛机制提供了见解。

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