论文标题

具有极化特性的生物启发的聚合物从可见到红外:一个材料游乐场到模仿紫色细菌的淡淡的谐振剂

Bio-inspired polymers with polaritonic properties from visible to infrared: a material playground to mimic purple bacteria light-harvesting resonators

论文作者

Holder, Samuel Thomas, Estévez-Varela, Carla, Pastoriza-Santos, Isabel, Lopez-Garcia, Martin, Oulton, Ruth, Núñez-Sánchez, Sara

论文摘要

天然光合系统中的轻疗复合物,例如紫色细菌的复合物,由嵌入密集包装的“天线”系统中的光反应性发色团组成。在紫色细菌的情况下,发色团天线由天然的J聚集物(如细菌氯叶藻和类胡萝卜素)组成。受此类生物系统的分子组成的启发,我们创建了一个有机材料库,该材料由聚合物基质中的密集堆积的J聚集物组成,其中基质模仿蛋白质支架。该有机材料库显示了极化性质,可以通过选择模型分子从可见光到红外调整。受\ textit {rhodospirillum molischianum}细菌的光收获复合物的分子结构的启发,我们研究了基于J-聚集剂的纳米含量与类似于类似的天然纳米级体系结构的光 - 聚集的纳米相互作用。电磁模拟表明,这些J凝集剂的纳米纳米可以充当谐振器,并在特定区域集中电场的同时将光线限制在光下。这些结果为全有机金属材料的生物启发的构建块打开了大门,同时在包括光合作用细胞器在内的生物生物体中,在纳米级的密集包装有机物中提供了对光结合相互作用的新观点。

Light-harvesting complexes in natural photosynthetic systems, such as those in purple bacteria, consist of photo-reactive chromophores embedded in densely packed "antenna" systems organized in well-defined nanostructures. In the case of purple bacteria, the chromophore antennas are composed of natural J-aggregates such as bacteriochlorophylls and carotenoids. Inspired by the molecular composition of such biological systems, we create a library of organic materials composed of densely packed J-aggregates in a polymeric matrix, in which the matrix mimics a protein scaffold. This library of organic materials shows polaritonic properties which can be tuned from the visible to the infrared by choice of the model molecule. Inspired by the molecular architecture of the light-harvesting complexes of \textit{Rhodospirillum molischianum} bacteria, we study the light-matter interactions of J-aggregate-based nanorings with similar dimensions to the analogous natural nanoscale architectures. Electromagnetic simulations show that these nanorings of J-aggregates can act as resonators, with subwavelength confinement of light while concentrating the electric field in specific regions. These results open the door to bio-inspired building blocks for all-organic metamaterials while offering a new perspective on light-matter interactions at the nanoscale in densely packed organic matter in biological organisms including photosynthetic organelles.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源