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Increasing spin crossover cooperativity in 2D Hofmann-type materials with guest molecule removal

机译:去除客体分子的情况下提高2D Hofmann型材料的自旋交叉合作性

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摘要

Molecule-based spin state switching materials that display ambient temperature transitions with accompanying wide thermal hysteresis offer an opportunity for electronic switching, data storage, and optical technologies but are rare in existence. Here, we present the first 2D Hofmann-type materials to exhibit the elusive combination of ambient temperature spin crossover with wide thermal hysteresis (ΔT = 50 and 65 K). Combined structural, magnetic, spectroscopic, and theoretical analyses show that the highly cooperative transition behaviours of these layered materials arise due to strong host–host interactions in their interdigitated lattices, which optimises long-range communication pathways. With the presence of water molecules in the interlayer pore space in the hydrated phases, competing host–host and host–guest interactions occur, whilst water removal dramatically increases the framework cooperativity, thus affording systematic insight into the structural features that favour optimal spin crossover properties.
机译:基于分子的自旋态开关材料显示了环境温度的变化,并伴随着较宽的热滞后,为电子开关,数据存储和光学技术提供了机会,但这种材料很少见。在这里,我们介绍了第一种2D霍夫曼型材料,其表现出环境温度自旋交叉与宽热滞后(ΔT= 50和65 K)的难以捉摸的组合。组合的结构,磁性,光谱和理论分析表明,这些层状材料的高度协作的过渡行为是由于其叉指状晶格中强烈的主体-主体相互作用而产生的,从而优化了远程通信路径。在水合相的层间孔隙空间中存在水分子时,会发生竞争性的主体-主体和主体-客体相互作用,而除水作用则极大地提高了框架的协同性,从而提供了系统结构的洞察力,从而有利于获得最佳的自旋交联特性。

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