Department of Chemistry, University of Fribourg, Switzerland.
Dalton Trans. 2012 Apr 7;41(13):3726-30. doi: 10.1039/c2dt12037b. Epub 2012 Feb 27.
Spin crossover requires cooperative behavior of the metal centers in order to become useful for devices. While cooperativity is barely predictable in solids, we show here that solution processing and the covalent introduction of molecular recognition sites allows the spin crossover of iron(III) sal(2)trien complexes to be rationally tuned. A simple correlation between the number of molecular recognition sites and the spin crossover temperature enabled the fabrication of materials that are magnetically bistable at room temperature. The predictable behavior relies on combining function (spin switching) and structure (supramolecular assembly) through covalent interactions in a single molecular building block.
自旋交叉需要金属中心的协同作用才能在器件中发挥作用。虽然固体中的协同作用几乎无法预测,但我们在这里表明,通过溶液处理和共价引入分子识别位点,可以对铁(III)sal(2)trien 配合物的自旋交叉进行合理调节。分子识别位点数量与自旋交叉温度之间的简单相关性使能够制备在室温下具有磁双稳性的材料。这种可预测的行为依赖于通过单个分子构建块中的共价相互作用将功能(自旋开关)和结构(超分子组装)结合在一起。