旋转交叉
双稳态
吡啶
自旋跃迁
结晶学
分子
化学
取代基
分子开关
热滞后
自旋态
磁滞
溶剂
立体化学
材料科学
凝聚态物理
无机化学
物理
药物化学
相变
有机化学
光电子学
作者
Kuppusamy Senthil Kumar,Nithin Suryadevara,Asato Mizuno,Lea Spieker,Soma Salamon,Stephan Sleziona,André Maas,Erik Pollmann,Benoît Heinrich,Marika Schleberger,Heiko Wende,Mario Rüben
标识
DOI:10.1002/chem.202103853
摘要
Bistable spin-crossover (SCO) complexes that undergo abrupt and hysteretic (ΔT1/2 ) spin-state switching are desirable for molecule-based switching and memory applications. In this study, we report on structural facets governing hysteretic SCO in a set of iron(II)-2,6-bis(1H-pyrazol-1-yl)pyridine) (bpp) complexes - [Fe(bpp-COOEt)2 ](X)2 ⋅CH3 NO2 (X=ClO4 , 1; X=BF4 , 2). Stable spin-state switching - T1/2 =288 K; ΔT1/2 =62 K - is observed for 1, whereas 2 undergoes above-room-temperature lattice-solvent content-dependent SCO - T1/2 =331 K; ΔT1/2 =43 K. Variable-temperature single-crystal X-ray diffraction studies of the complexes revealed pronounced molecular reorganizations - from the Jahn-Teller-distorted HS state to the less distorted LS state - and conformation switching of the ethyl group of the COOEt substituent upon SCO. Consequently, we propose that the large structural reorganizations rendered SCO hysteretic in 1 and 2. Such insights shedding light on the molecular origin of thermal hysteresis might enable the design of technologically relevant molecule-based switching and memory elements.
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