| Literature DB >> 29790732 |
Zhenhua Gao1,2, Wei Zhang1, Yongli Yan1, Jun Yi3, Haiyun Dong1,2, Kang Wang1,2, Jiannian Yao1,2, Yong Sheng Zhao1,2.
Abstract
Microscale laser switches have been playing irreplaceable roles in the development of photonic devices with high integration levels. However, it remains a challenge to switch the lasing wavelengths across a wide range due to relatively fixed energy bands in traditional semiconductors. Here, we report a strategy to switch the lasing wavelengths among multiple states based on a proton-controlled intramolecular charge-transfer (ICT) process in organic dye-doped flexible microsphere resonant cavities. The protonic acids can effectively bind onto the ICT molecules, which thus enhance the ICT strength of the dyes and lead to a red-shifted gain behavior. On this basis, the gain region was effectively modulated by using acids with different proton-donating ability, and as a result, laser switching among multiple wavelengths was achieved. The results will provide guidance for the rational design of miniaturized lasers with performances based on the characteristic of organic optoelectronic materials.Entities:
Keywords: laser switch; nanophotonic material; organic nanomaterial; proton acid; smart responsiveness
Year: 2018 PMID: 29790732 DOI: 10.1021/acsnano.8b01607
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881