Shi Xiaowu, Man Yi, He Yan, Xu Hui, Zhang Baoping, Yu Daquan, Lin Zhuliang, Lv Ziyue, Zhao Zhiyuan, Zhang Linqi, Chen Yongjian, Zhang Dan
Fujian Key Laboratory of Ultrafast Laser Technology and Applications, School of Electronic Science and Engineering (National Model Microelectronics College), Xiamen University, Xiamen, 361005, China.
Key Laboratory of Functional Inorganic Material Chemistry, Ministry of Education, School of Chemistry and Material Science, Heilongjiang University, Harbin, 150080, China.
Adv Sci (Weinh). 2024 Aug;11(31):e2401131. doi: 10.1002/advs.202401131. Epub 2024 Jun 19.
9,9-bis (diphenylphosphorylphenyl) fluorene (FDPO) and dibenzotetrathienoacene (DBTTA), are synthesized as the neutral and anionic ligands, respectively, to prepare the Er coordination polymer [Er(DBTTA)(FDPO)]. Based on the intramolecular energy transfer, optical gains at 1.5 µm are demonstrated in [Er(DBTTA)(FDPO)]-doped polymer waveguides under excitations of low-power light-emitting diodes (LEDs) instead of laser pumping. A ligand-sensitization scheme between organic ligands and Er ions under an excitation of an ultraviolet (UV) LED is established. Relative gains of 10.5 and 8.5 dB cm are achieved at 1.53 and 1.55 µm, respectively, on a 1-cm-long SU-8 channel waveguide with a cross-section of 2 × 3 µm and a 1.5-µm-thick [Er(DBTTA)(FDPO)]-doped polymethylmethacrylate (PMMA) as upper cladding. The Er coordination polymer [Er(DBTTA)(FDPO)] can be conveniently integrated with various low-loss inorganic waveguides to compensate for optical losses in the C-band window. Moreover, by relying on the intramolecular energy transfer and UV LED top-pumping technology, it is easy to achieve coupling packaging of erbium-doped waveguide amplifiers (EDWAs) with pump sources in planar photonic integrated chips, effectively reducing the commercial costs.
分别合成了9,9-双(二苯基磷酰基苯基)芴(FDPO)和二苯并四噻吩并蒽(DBTTA)作为中性和阴离子配体,以制备铒配位聚合物[Er(DBTTA)(FDPO)]。基于分子内能量转移,在低功率发光二极管(LED)而非激光泵浦激发下,[Er(DBTTA)(FDPO)]掺杂的聚合物波导中实现了1.5 µm处的光学增益。建立了在紫外(UV)LED激发下有机配体与铒离子之间的配体敏化方案。在一个横截面为2×3 µm、长1 cm的SU-8通道波导以及以1.5 µm厚的[Er(DBTTA)(FDPO)]掺杂聚甲基丙烯酸甲酯(PMMA)作为上包层的情况下,在1.53和1.55 µm处分别实现了10.5和8.5 dB cm的相对增益。铒配位聚合物[Er(DBTTA)(FDPO)]可以方便地与各种低损耗无机波导集成,以补偿C波段窗口中的光学损耗。此外,依靠分子内能量转移和UV LED顶部泵浦技术,易于在平面光子集成芯片中实现掺铒波导放大器(EDWA)与泵浦源的耦合封装,有效降低商业成本。