Majcher Anna M, Dąbczyński Paweł, Marzec Mateusz M, Ceglarska Magdalena, Rysz Jakub, Bernasik Andrzej, Ohkoshi Shin-Ichi, Stefańczyk Olaf
Faculty of Physics, Astronomy and Applied Computer Science , Jagiellonian University , Łojasiewicza 11 , 30-348 Krakow , Poland . Email:
Academic Centre for Materials and Nanotechnology , AGH University of Science and Technology , al. Mickiewicza 30 , 30-049 Kraków , Poland.
Chem Sci. 2018 Aug 3;9(36):7277-7286. doi: 10.1039/c8sc02277a. eCollection 2018 Sep 28.
The creation of functional magnetic materials for application in high-density memory storage or in the new field of molecular spintronics is a matter of widespread interest among the material research community. Herein, we describe a new approach that combines the qualities of single ion magnets, displaying slow magnetic relaxations, and the merits of polymers, being easy to process and widely used to produce thin films. Basing the idea on cobalt(ii) ions and pyridine-based single ion magnets, a new macromolecular magnetic material was obtained - a polymeric matrix of poly(4-vinylpyridine) (P4VP) cross-linked by a cobalt(ii) salt bound within it, effectively forming a network of single ion magnets, with field-induced magnetic relaxations preserved in both bulk and thin film forms. The binding of cobalt is confirmed by a series of methods, like secondary ion mass spectroscopy or high-resolution X-ray photoelectron spectroscopy. The magnetic relaxation times, up to 5 × 10 s, are controllable simply by dilution, making this new material a semi-solid solution. By this approach, a new path is formed to connect molecular magnetism and polymer science, showing that the easy polymer processing can be used in forming self-organizing functional magnetic thin films.
开发用于高密度存储器存储或分子自旋电子学新领域的功能性磁性材料,是材料研究界广泛关注的问题。在此,我们描述了一种新方法,该方法结合了具有缓慢磁弛豫特性的单离子磁体的特性以及聚合物易于加工且广泛用于制备薄膜的优点。基于钴(II)离子和吡啶基单离子磁体,获得了一种新型高分子磁性材料——一种由结合在其中的钴(II)盐交联的聚(4-乙烯基吡啶)(P4VP)聚合物基体,有效地形成了单离子磁体网络,体相和薄膜形式均保留了场诱导磁弛豫。钴的结合通过一系列方法得以证实,如二次离子质谱或高分辨率X射线光电子能谱。通过简单稀释,磁弛豫时间可达5×10 s,这使得这种新材料成为一种半固态溶液。通过这种方法,形成了一条连接分子磁学和聚合物科学的新途径,表明聚合物易于加工可用于形成自组织功能性磁性薄膜。