Departamento de Química Orgánica, ICMA, Universidad de Zaragoza-CSIC, 50009 Zaragoza, Spain.
MOLTECH-Anjou Laboratory, UMR CNRS 6200, University of Angers, 2 bd Lavoisier, 49045 Angers Cedex, France.
Org Biomol Chem. 2018 Apr 4;16(14):2470-2478. doi: 10.1039/C8OB00251G.
The present work takes advantage of the self-assembly process occurring along organogelation, to organize Second Harmonic Generation (SHG) active chromophores. To do so, three push-pull chromophores endowed with a dodecyl urea chain were synthesized and characterized. Their organogelating properties were studied in a wide range of solvents. Despite similar architectures, these derivatives exhibit very different gelling properties, from supergelation to the absence of gelling ability. The utilization of the Hansen solubility parameters allows for observing clear relationships between the gelled solvents and critical gelation concentrations. By evaporating the solvents from the organogels, xerogel materials were prepared and systematically studied by means of optical and electron microscopy as well as SHG microscopy. These studies demonstrate the critical role of the solvent over material structuring and allow generalizing the approach exploiting organogelation as a structuring tool to spontaneously organize push-pull chromophores into SHG-active materials.
本工作利用沿有机凝胶化发生的自组装过程,来组织二次谐波产生(SHG)活性生色团。为此,合成并表征了三个具有十二烷基脲链的推拉生色团。研究了它们在广泛溶剂中的有机凝胶化性质。尽管具有相似的结构,但这些衍生物表现出非常不同的凝胶性质,从超凝胶到缺乏凝胶能力。利用 Hansen 溶解度参数可以观察到凝胶溶剂和临界凝胶浓度之间的清晰关系。通过从有机凝胶中蒸发溶剂,制备了干凝胶材料,并通过光学和电子显微镜以及 SHG 显微镜对其进行了系统研究。这些研究证明了溶剂对材料结构的关键作用,并允许推广利用有机凝胶化为结构工具的方法,将推拉生色团自发组织成 SHG 活性材料。