Liberka Michal, Zychowicz Mikolaj, Hooper James, Nakabayashi Koji, Ohkoshi Shin-Ichi, Chorazy Szymon
Faculty of Chemistry, Jagiellonian University, Gronostajowa 2, 30-387, Kraków, Poland.
Doctoral School of Exact and Natural Sciences, Jagiellonian University, Łojasiewicza 11, 30-348, Kraków, Poland.
Angew Chem Int Ed Engl. 2023 Oct 9;62(41):e202308284. doi: 10.1002/anie.202308284. Epub 2023 Sep 4.
Switching of multiple physical properties by external stimuli in dynamic materials enables applications in, e.g., smart sensors, biomedical tools, as well as data-storage devices. Among stimuli-responsive materials, inorganic-organic molecular hybrids exhibiting thermal order-disorder phase transitions were tested as promising molecular switches of electrical characteristics, including dielectric constant. We aimed at broadening the multifunctional potential of such hybrid materials towards the switching of not only electrical but also other physical properties, e.g., light emission. We report two ionic salts based on luminescent tetracyanidonitridorhenate(V) anions bearing two different diamine ligands, 1,2-diaminoethane (1) and 1,3-diaminopropane (2), both crystallizing with polar N-methyl-dabconium cations. They exhibit an order-disorder phase transition related to the heating-induced turning-on of the rotation of polar cations. This leads to a unique synchronous switching of the dielectric constant as well as metal-complex-centered photoluminescence, as demonstrated by changes in, e.g., emission lifetime. The roles of organic cations, non-trivial Re(V) complexes, and their interaction in achieving the coupled thermal switching of electrical and optical properties are discussed utilizing experimental and theoretical approaches.
动态材料中通过外部刺激切换多种物理性质,使其可应用于智能传感器、生物医学工具以及数据存储设备等领域。在刺激响应材料中,表现出热有序-无序相变的无机-有机分子杂化物被作为包括介电常数在内的电学特性的有前景的分子开关进行了测试。我们旨在拓宽此类杂化材料的多功能潜力,使其不仅能切换电学性质,还能切换其他物理性质,例如发光。我们报道了两种基于发光的四氰基硝铼(V)阴离子的离子盐,它们带有两种不同的二胺配体,1,2-二氨基乙烷(1)和1,3-二氨基丙烷(2),二者均与极性N-甲基-达布考宁阳离子一起结晶。它们表现出与加热诱导的极性阳离子旋转开启相关的有序-无序相变。这导致了介电常数以及以金属配合物为中心的光致发光的独特同步切换,例如通过发射寿命的变化得以证明。利用实验和理论方法讨论了有机阳离子、非平凡的Re(V)配合物及其相互作用在实现电学和光学性质的耦合热切换中的作用。