开发局部表面等离子体共振诱导的激发功率响应式反斯托克斯发射波长切换及其节能技术。

0 MATERIALS SCIENCE, MULTIDISCIPLINARY
Jotaro Honda, Kosuke Sugawa, Koki Honma, Seiya Fukumura, Ryuzi Katoh, Hironobu Tahara, Joe Otsuki
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引用次数: 0

摘要

我们设计了一种外部刺激响应型反斯托克斯发射开关,它采用基于双湮灭器的三重-三重湮灭上转换系统。该系统是通过在聚合物薄膜中加入钯卟啉衍生物作为敏化剂,9,10-二苯基蒽(DPA)和 9,10-双(三异丙基硅基)乙炔基蒽(TIPS)作为湮灭剂而构建的,在低激励功率和高激励功率下分别产生基于 TIPS 和 DPA 的反斯托克斯发射。其机理如下:在低激发功率下,三重能从三重激发的 PdOEP 转移到 DPA,然后再转移到 TIPS。这就产生了三重激发的 TIPS,随后它们之间的三重-三重湮灭产生了基于 TIPS 的反斯托克斯发射。相反,在高激发功率下,通过 PdOEP 的三重态能量转移产生的高密度三重态激发 DPA 会发生三重态-三重态相互湮灭,从而产生基于 DPA 的反斯托克斯发射。此外,我们还利用等离子金属纳米粒子降低了开关所需的激发功率,从而实现了节能。与金属纳米粒子的局部表面等离子体共振相关的强局部电磁场提高了 PdOEP 的光激发效率,从而增加了三重激发 DPA 的密度。因此,在较低的激发功率下就可以实现反斯托克斯发射切换。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Development of excitation power-responsive anti-stokes emission wavelength switching and their energy saving induced by localized surface plasmon resonance.

Development of excitation power-responsive anti-stokes emission wavelength switching and their energy saving induced by localized surface plasmon resonance.

We designed an external stimulus-responsive anti-Stokes emission switching using dual-annihilator-based triplet-triplet annihilation upconversion systems. This system, which was constructed by incorporating a palladium porphyrin derivative as a sensitizer and 9,10-diphenylanthracene (DPA) and 9,10-bis(triisopropylsilyl)ethynylanthracene (TIPS) as annihilators into polymer thin films, produced TIPS- and DPA-based anti-Stokes emission under low and high excitation powers, respectively. The mechanism involves the following: under low excitation power, triplet energy transfer from triplet-excited PdOEP to DPA is induced, followed by relay to TIPS. This results in the generation of triplet-excited TIPS, and the subsequent triplet-triplet annihilation between them produces TIPS-based anti-Stokes emission. Conversely, under high excitation power, the high-density triplet-excited DPA, generated through triplet energy transfer from PdOEP, undergoes triplet-triplet annihilation among themselves, resulting in the generation of DPA-based anti-Stokes emission. Additionally, we achieved energy savings by reducing the required excitation power for switching through the utilization of plasmonic metal nanoparticles. The strong local electromagnetic fields associated with the localized surface plasmon resonance of metal nanoparticles enhance the photoexcitation efficiency of PdOEP, subsequently increasing the density of triplet-excited DPA. As a result, anti-Stokes emission switching becomes feasible at lower excitation powers.

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