J-骨料
化学物理
桥接(联网)
激子
谱线
单体
带隙
骨料(复合)
光子学
量子
光电子学
超辐射
吸收(声学)
材料科学
分子物理学
化学
物理
凝聚态物理
纳米技术
光学
量子力学
聚合物
计算机科学
计算机网络
复合材料
激光器
作者
Arundhati Deshmukh,Niklas Geue,Nadine C. Bradbury,Timothy L. Atallah,Chern Chuang,Monica Pengshung,Jianshu Cao,Ellen M. Sletten,Daniel Neuhauser,Justin R. Caram
摘要
Molecular aggregates with long-range excitonic couplings have drastically different photophysical properties compared to their monomer counterparts. From Kasha's model for one-dimensional systems, positive or negative excitonic couplings lead to blue or red-shifted optical spectra with respect to the monomers, labeled H-and J-aggregates, respectively. The overall excitonic couplings in higher dimensional systems are much more complicated and cannot be simply classified from their spectral shifts alone. Here, we provide a unified classification for extended 2D aggregates using temperature dependent peak shifts, thermal broadening, and quantum yields. We discuss the examples of six 2D aggregates with J-like absorption spectra but quite drastic changes in quantum yields and superradiance. We find the origin of the differences is, in fact, a different excitonic band structure where the bright state is lower energy than the monomer but still away from the band edge. We call this an “I-aggregate.” Our results provide a description of the complex excitonic behaviors that cannot be explained solely on Kasha's model. Furthermore, such properties can be tuned with the packing geometries within the aggregates providing supramolecular pathways for controlling them. This will allow for precise optimizations of aggregate properties in their applications across the areas of optoelectronics, photonics, excitonic energy transfer, and shortwave infrared technologies.
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