Müller Kai, Knebel Alexander, Zhao Fangli, Bléger David, Caro Jürgen, Heinke Lars
Chemistry of Oxydic and Organic Interfaces, Institute of Functional Interfaces, Karlsruhe Institute of Technology (KIT), Hermann-von-Helmholtz-Platz 1, 76344, Eggenstein-Leopoldshafen, Germany.
Institute for Physical Chemistry and Electrochemistry, Leibniz University Hanover, Callinstrasse 3a, 30167, Hannover, Germany.
Chemistry. 2017 Apr 24;23(23):5434-5438. doi: 10.1002/chem.201700989. Epub 2017 Apr 3.
Stimuli-responsive molecules change their properties when exposed to external signals, such as light, and enable the preparation of smart materials. UV light, which often destroys organic materials, is typically required for activating the desired response of photoswitchable compounds, significantly limiting the potential applications of light-operated smart materials. Herein, we present the first metal-organic framework (MOF), which enables reversible modulation of key properties upon irradiation with visible light only. The fluorinated azobenzene side groups in the MOF structure can be reversibly switched between the trans and cis state by green and violet light, avoiding UV light. It was demonstrated that the uptake of guest molecules by these MOF films can be switched in a fully remote-controlled way. The membrane separation of hydrogen/hydrocarbon mixtures was investigated. The light-induced changes of the MOF pore size result in the switching of the permeation and of the selection factor.
刺激响应分子在暴露于外部信号(如光)时会改变其性质,从而能够制备智能材料。紫外线通常会破坏有机材料,而激活光开关化合物的所需响应通常需要紫外线,这极大地限制了光控智能材料的潜在应用。在此,我们展示了首个金属有机框架(MOF),它仅在可见光照射下就能实现关键性质的可逆调制。MOF结构中的氟化偶氮苯侧基可通过绿光和紫光在反式和顺式状态之间可逆切换,避免了紫外线的使用。结果表明,这些MOF薄膜对客体分子的吸收可以通过完全远程控制的方式进行切换。研究了氢气/碳氢化合物混合物的膜分离。MOF孔径的光致变化导致渗透率和选择因子的切换。