Conesa-Egea Javier, Nogal Noemí, Martínez José Ignacio, Fernández-Moreira Vanesa, Rodríguez-Mendoza Ulises R, González-Platas Javier, Gómez-García Carlos J, Delgado Salomé, Zamora Félix, Amo-Ochoa Pilar
Departamento de Química Inorgánica , Universidad Autónoma de Madrid , 28049 Madrid , Spain . Email:
Condensed Matter Physics Center (IFIMAC) , Universidad Autónoma de Madrid , 28049 Madrid , Spain.
Chem Sci. 2018 Aug 23;9(41):8000-8010. doi: 10.1039/c8sc03085e. eCollection 2018 Nov 7.
One-pot reactions between CuI and methyl or methyl 2-amino-isonicotinate give rise to the formation of two coordination polymers (CPs) based on double zig-zag CuI chains. The presence of a NH group in the isonicotinate ligand produces different supramolecular interactions affecting the Cu-Cu distances and symmetry of the CuI chains. These structural variations significantly modulate their physical properties. Thus, both CPs are semiconductors and also show reversible thermo/mechanoluminescence. X-ray diffraction studies carried out under different temperature and pressure conditions in combination with theoretical calculations have been used to rationalize the multi-stimuli-responsive properties. Importantly, a bottom-up procedure based on fast precipitation leads to nanofibers of both CPs. The dimensions of these nanofibres enable the preparation of thermo/mechanochromic film composites with polyvinylidene difluoride. These films are tens of nanometers in thickness while being centimeters in length, representing smaller thicknesses so far reported for thin-film composites. This nanomaterial integration of CPs could represent a source of alternative nanomaterials for opto-electronic device fabrication.
碘化亚铜与甲基或 2-氨基异烟酸甲酯之间的一锅法反应产生了两种基于双之字形碘化亚铜链的配位聚合物(CPs)。异烟酸酯配体中 NH 基团的存在产生了不同的超分子相互作用,影响了碘化亚铜链的铜 - 铜距离和对称性。这些结构变化显著调节了它们的物理性质。因此,两种配位聚合物都是半导体,并且还表现出可逆的热/机械发光。结合理论计算,在不同温度和压力条件下进行的 X 射线衍射研究已用于合理解释多刺激响应特性。重要的是,基于快速沉淀的自下而上方法导致了两种配位聚合物的纳米纤维。这些纳米纤维的尺寸使得能够制备与聚偏二氟乙烯的热/机械变色薄膜复合材料。这些薄膜厚度为几十纳米,而长度为几厘米,代表了迄今为止报道的薄膜复合材料中更小的厚度。这种配位聚合物的纳米材料整合可能代表了用于光电器件制造的替代纳米材料来源。