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Mechanism of Ferromagnetic Coupling in Copper(II)-Gadolinium(III) Complexes

机译:铜(II)-ado(III)配合物中铁磁耦合的机理

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摘要

This paper offers the first series of state-of-the-art quantum chemical calculations (CASSCF, CASPT2, MS-CASPT2) and analytical models for the well-known problem of quasi-general ferromagnetic coupling in copper-gadolinium complexes. A system chosen from the chemical report of Costes et al. was taken as prototype. At the CASSCF level, calculated results for the experimental structure reproduced the magnetic coupling constant well (J_(calcd) = +7.67 cm~(-1) vs J_(exp) = +7.0 cm~(-1)). For more insight, the study molecule was further idealized by geometry optimization to C2v symmetry. Systematic ab initio computation experiments were designed and performed. Owing to specific problems related to the non-aufbau ground configuration of the [CuL-Gd] complexes, the calculations were conducted in a nonstandard manner. We found that the qualitative mechanism of Kahn, assigned to the electron jump from 3d of Cu(II) to 5d shell of Gd(III), can be presented effectively as the cause of the phenomenon, if CASPT2 MOs are taken as magnetic orbitals. We showed that the ferromagnetic coupling is also matched and magnified by spin polarization effects over the ligand, in line with the early assumption of Gatteschi. To be distinguished from the initial hypothesis of Gatteschi, which assumed the role of 6s AO of Gd(III), we found that one 5d-type AO is actually involved in the polarization scheme. In fact, the Gatteschi and Kahn mechanisms are not mutually contradictory, but are even interconvertible with appropriate changes of the magnetic orbitals. Within C_(2v) symmetry of complexes, the ferromagnetic coupling can be qualitatively regarded as the preponderant influence of interaction channels exhibiting orbital orthogonality (four 3d-4f contacts) over the nonorthogonal ones (two 3d-4f contacts). The effective preponderance from ferromagnetic pathways is supported by CASPT2 results. One may explain the generality of Cu(II)-Gd(III) ferromagnetic coupling as being correlated with the large occurrence of approximate pseudo-C_(2v) geometry of complexes. The observed orbital regularity is lost in lower symmetries. Thus, the antiferromagnetic exceptions occur when the molecular asymmetry is advanced (e.g., owing to strong chemical nonequivalence of the donor atoms).
机译:本文提供了第一套最先进的量子化学计算(CASSCF,CASPT2,MS-CASPT2)和解析模型,用于解决铜ga络合物中的准一般铁磁耦合问题。从Costes等人的化学报告中选择的系统。被当作​​原型。在CASSCF级别上,实验结构的计算结果很好地再现了磁耦合常数(J_(计算值)= +7.67 cm〜(-1)vs J_(exp)= +7.0 cm〜(-1))。为了获得更多的见识,通过几何优化将研究分子进一步理想化为C2v对称性。设计并进行了系统的从头算计算实验。由于与[CuL-Gd]配合物的非aufbau地面构型有关的特定问题,因此以非标准方式进行了计算。我们发现,如果将CASPT2 MOs视为磁轨道,则归因于从Cu(II)的3d跃迁到Gd(III)的5d壳的电子跃迁的Kahn的定性机制可以有效地解释为该现象的原因。我们证明了铁磁耦合也被配体上的自旋极化效应所匹配和放大,这与Gatteschi的早期假设是一致的。为了区别于盖特斯基最初的假设,后者假设了Gd(III)的6s AO,我们发现一个5d型AO实际上参与了极化方案。实际上,Gatteschi机制和Kahn机制并不是相互矛盾的,而是可以通过适当改变磁轨道相互转换。在配合物的C_(2v)对称性内,铁磁耦合可以定性地视为与非正交(两个3d-4f接触)相比,具有轨道正交性(四个3d-4f接触)的相互作用通道的主要影响。 CASPT2结果支持了铁磁途径的有效优势。人们可能会解释Cu(II)-Gd(III)铁磁耦合的普遍性与络合物的近似伪C_(2v)几何结构的大量出现有关。观测到的轨道规则性以较低的对称性丢失。因此,当分子不对称提前时(例如,由于施主原子的化学不等价性强),反铁磁异常发生。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2004年第10期|p. 3321-3331|共11页
  • 作者单位

    epartment of Applied Chemistry, School of Engineering University of Tokyo, Tokyo, Japan 113-8656;

    Institute of Physical Chemistry, Splaiul Independentei 202, Bucharest 77208, Romania;

    Department of Chemistry, Graduate School of Science, Tokyo Metropolitan University, Tokyo 192-0397, Japan;

    epartment of Applied Chemistry, School of Engineering University of Tokyo, Tokyo, Japan 113-8656;

  • 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
  • 中图分类 化学;
  • 关键词

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