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Giant coercivity and high magnetic blocking temperatures for N23− radical-bridged dilanthanide complexes upon ligand dissociation

机译:N23-自由基桥联的双镧系金属配合物解离时具有巨大的矫顽力和较高的磁阻温度

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摘要

Increasing the operating temperatures of single-molecule magnets—molecules that can retain magnetic polarization in the absence of an applied field—has potential implications toward information storage and computing, and may also inform the development of new bulk magnets. Progress toward these goals relies upon the development of synthetic chemistry enabling enhancement of the thermal barrier to reversal of the magnetic moment, while suppressing alternative relaxation processes. Herein, we show that pairing the axial magnetic anisotropy enforced by tetramethylcyclopentadienyl (CpMe4H) capping ligands with strong magnetic exchange coupling provided by an N2 3− radical bridging ligand results in a series of dilanthanide complexes exhibiting exceptionally large magnetic hysteresis loops that persist to high temperatures. Significantly, reducing the coordination number of the metal centers appears to increase axial magnetic anisotropy, giving rise to larger magnetic relaxation barriers and 100-s magnetic blocking temperatures of up to 20 K, as observed for the complex [K(crypt-222)][(CpMe4H 2Tb)2(μ−N2)].
机译:单分子磁体的工作温度升高(在不存在外加磁场的情况下仍可保持磁极化的分子)的工作温度可能对信息存储和计算产生潜在影响,并且可能会为新的体磁体的开发提供信息。朝着这些目标的进展依赖于合成化学的发展,该合成使得能够增强对磁矩逆转的热障,同时抑制替代的弛豫过程。在本文中,我们表明,将四甲基环戊二烯基(Cp Me4H )封端配体强制执行的轴向磁各向异性与N2 3-自由基桥联配体提供的强磁交换耦合配对会产生系列的二镧系元素配合物表现出异常大的磁滞回线,并持续高温。显着地,减少金属中心的配位数似乎会增加轴向磁各向异性,从而产生更大的磁弛豫势垒,并且对复合物[K(crypt-222)]观察到高达100-K的100-s磁阻温度。 [(Cp Me4H 2Tb)2(μ- N 2 )]。

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