Min Hyunsung, Craze Alexander R, Wallis Matthew J, Tokunaga Ryuya, Taira Takahiro, Hirai Yutaka, Bhadbhade Mohan M, Fanna Daniel J, Marjo Christopher E, Hayami Shinya, Lindoy Leonard F, Li Feng
School of Science, Western Sydney University, Locked Bag 1797, Penrith, NSW, 2751, Australia.
Department of Chemistry, University of Oxford, 12 Mansfield Road, Oxford, OX1 3Ta, UK.
Chemistry. 2023 Apr 3;29(19):e202203742. doi: 10.1002/chem.202203742. Epub 2023 Mar 1.
Discrete spin crossover (SCO) heteronuclear cages are a rare class of materials which have potential use in next-generation molecular transport and catalysis. Previous investigations of cubic cage [Fe Pd L ] constructed using semi-rigid metalloligands, found that Fe centers of the cage did not undergo spin transition. In this work, substitution of the secondary metal center at the face of the cage resulted in SCO behavior, evidenced by magnetic susceptibility, Mössbauer spectroscopy and single crystal X-ray diffraction. Structural comparisons of these two cages shed light on the possible interplay of inter- and intramolecular interactions associated with SCO in the Ni analogue, 1 ([Fe Ni L (CH CN) ] ). The distorted octahedral coordination environment, as well as the occupation of the CH CN in the Ni axial positions of 1, prevented close packing of cages observed in the Pd analogue. This led to offset, distant packing arrangements whereby important areas within the cage underwent dramatic structural changes with the exhibition of SCO.
离散自旋交叉(SCO)异核笼是一类罕见的材料,在下一代分子传输和催化方面具有潜在应用。先前对使用半刚性金属配体构建的立方笼[Fe Pd L]的研究发现,笼中的Fe中心未发生自旋转变。在这项工作中,笼表面二级金属中心的取代导致了SCO行为,这通过磁化率、穆斯堡尔光谱和单晶X射线衍射得到了证实。对这两种笼的结构比较揭示了与镍类似物1([Fe Ni L(CH CN)])中SCO相关的分子间和分子内相互作用的可能相互作用。扭曲的八面体配位环境,以及1中镍轴向位置上CH CN的占据,阻止了在钯类似物中观察到的笼的紧密堆积。这导致了偏移、远距离的堆积排列,从而使笼内的重要区域随着SCO的表现发生了显著的结构变化。