Beijing National Laboratory for Molecular Sciences (BNLMS), Key Laboratory of Photochemistry, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190 (China).
Angew Chem Int Ed Engl. 2015 Jun 8;54(24):7125-9. doi: 10.1002/anie.201502684. Epub 2015 Apr 29.
Coherent light signals generated at the nanoscale are crucial to the realization of photonic integrated circuits. Self-assembled nanowires from organic dyes can provide both a gain medium and an effective resonant cavity, which have been utilized for fulfilling miniaturized lasers. Excited-state intramolecular proton transfer (ESIPT), a classical molecular photoisomerization process, can be used to build a typical four-level system, which is more favorable for population inversion. Low-power driven lasing in proton-transfer molecular nanowires with an optimized ESIPT energy-level process has been achieved. With high gain and low loss from the ESIPT, the wires can be applied as effective FP-type resonators, which generated single-mode lasing with a very low threshold. The lasing wavelength can be reversibly switched based on a conformation conversion of the excited keto form in the ESIPT process.
相干纳米尺度的光信号对于实现光子集成电路至关重要。有机染料自组装纳米线既可以提供增益介质,又可以提供有效的共振腔,从而实现小型化激光器。激发态分子内质子转移(ESIPT)是一种经典的分子光致异构化过程,可用于构建典型的四能级系统,更有利于粒子数反转。通过优化 ESIPT 能级过程,在质子转移分子纳米线中实现了低功率驱动激光。由于 ESIPT 的高增益和低损耗,这些纳米线可用作有效的 FP 型谐振器,产生低阈值的单模激光。基于 ESIPT 过程中激发酮式的构象转换,激光波长可以可逆切换。