Conesa-Egea Javier, Moreno-Vázquez Alberto, Fernández-Moreira Vanesa, Ballesteros Yolanda, Castellanos Milagros, Zamora Félix, Amo-Ochoa Pilar
Departamento de Química Inorgánica, Universidad Autónoma de Madrid, 28049 Madrid, Spain.
Condensed Matter Physics Center (IFIMAC), Universidad Autónoma de Madrid, 28049 Madrid, Spain.
Polymers (Basel). 2019 Jun 15;11(6):1047. doi: 10.3390/polym11061047.
Herein is presented the preparation and characterization of a composite material obtained by the combination of nanosheets of a coordination polymer (CP) based on the copper(I)-I double chain with response to temperature and pressure with polylactic acid (PLA) as biodegradable organic matrix. The new films of composite materials are generated using a simple and low-cost method and can be created with long lateral dimensions and thicknesses ranging from a few microns to a few nanometers. Studies show that the new material maintains the optical response versus the temperature, while the elasticity and flexibility of the PLA totally quenches the response to pressure previously observed for the CP. This new material can act as a reversible sensor at low temperatures, thanks to the flexibility of the copper(I)-iodine chain that conforms the CP. The addition of CP to the PLA matrix reduces the elastic modulus and ultimate elongation of the organic matrix, although it does not reduce its tensile strength.
本文介绍了一种复合材料的制备与表征,该复合材料是通过将基于铜(I)-碘双链且对温度和压力有响应的配位聚合物(CP)纳米片与作为可生物降解有机基质的聚乳酸(PLA)相结合而获得的。复合材料的新薄膜采用简单且低成本的方法制备,其横向尺寸较长,厚度范围从几微米到几纳米。研究表明,新材料保持了对温度的光学响应,而PLA的弹性和柔韧性完全抑制了先前在CP中观察到的对压力的响应。由于构成CP的铜(I)-碘链具有柔韧性,这种新材料在低温下可作为可逆传感器。将CP添加到PLA基质中会降低有机基质的弹性模量和极限伸长率,尽管不会降低其拉伸强度。