Lin Dongqing, Li Yang, Zhang He, Zhang Shuai, Gao Yuezheng, Zhai Tianrui, Hu Shu, Sheng Chuanxiang, Guo Heng, Xu Chunxiang, Wei Ying, Li Shifeng, Han Yelong, Feng Quanyou, Wang Shasha, Xie Linghai, Huang Wei
Centre for Molecular Systems and Organic Devices (CMSOD), State Key Laboratory of Organic Electronics and Information Displays & Institute of Advanced Materials (IAM), Nanjing University of Posts and Telecommunications, 9 Wenyuan Road, Nanjing 210023, China.
College of Physics and Optoelectronics, Faculty of Science, Beijing University of Technology, Beijing 100124, China.
Research (Wash D C). 2023;6:0027. doi: 10.34133/research.0027. Epub 2023 Jan 16.
In situ self-assembly of semiconducting emitters into multilayer cracks is a significant solution-processing method to fabricate organic high- lasers. However, it is still difficult to realize from conventional conjugated polymers. Herein, we create the molecular super-hindrance-etching technology, based on the π-functional nanopolymer PG-Cz, to modulate multilayer cracks applied in organic single-component random lasers. Massive interface cracks are formed by promoting interchain disentanglement with the super-steric hindrance effect of π-interrupted main chains, and multilayer morphologies with photonic-crystal-like ordering are also generated simultaneously during the drop-casting method. Meanwhile, the enhancement of quantum yields on micrometer-thick films ( = 40% to 50%) ensures high-efficient and ultrastable deep-blue emission. Furthermore, a deep-blue random lasing is achieved with narrow linewidths ~0.08 nm and high-quality factors ≈ 5,500 to 6,200. These findings will offer promising pathways of organic π-nanopolymers for the simplification of solution processes applied in lasing devices and wearable photonics.
将半导体发光体原位自组装成多层裂缝是制造有机高功率激光器的一种重要的溶液处理方法。然而,从传统共轭聚合物中实现这一点仍然很困难。在此,我们基于π-功能纳米聚合物PG-Cz创建了分子超阻碍蚀刻技术,以调控应用于有机单组分随机激光器的多层裂缝。通过π中断主链的超空间位阻效应促进链间解缠结,形成大量界面裂缝,并且在滴铸法过程中同时产生具有类光子晶体有序排列的多层形态。同时,微米厚薄膜的量子产率提高(从40%提高到50%)确保了高效且超稳定的深蓝色发射。此外,实现了线宽约0.08 nm、品质因数≈5500至6200的深蓝色随机激光发射。这些发现将为有机π-纳米聚合物在简化激光器件和可穿戴光子学中的溶液处理工艺方面提供有前景的途径。