Jumbo-Nogales Alba, Rao Anish, Olejniczak Adam, Grzelczak Marek, Rakovich Yury
Centro de Física de Materiales (MPC, CSIC-UPV/EHU), 20018 San Sebastián, Spain.
Donostia International Physics Center (DIPC), 20018 San Sebastián, Spain.
Nanomaterials (Basel). 2023 Dec 22;14(1):35. doi: 10.3390/nano14010035.
Plexcitonic systems based on metal nanostructures and molecular J-aggregates offer an excellent opportunity to explore the intriguing interplay between plasmonic excitations and excitons, offering unique insights into light-matter interactions at the nanoscale. Their potential applications in photocatalysis have prompted a growing interest in both their synthesis and the analysis of their properties. However, in order to construct a high-performing system, it is essential to ensure chemical and spectral compatibility between both components. We present the results of a study into a hybrid system, achieved through the coupling of gold nanobipyramids with organic molecules, and demonstrate the strengthened photochemical properties of such a system in comparison with purely J-aggregates. Our analysis includes the absorbance and photoluminescence characterization of the system, revealing the remarkable plexcitonic interaction and pronounced coupling effect. The absorbance spectroscopy of the hybrid systems enabled the investigation of the coupling strength (g). Additionally, the photoluminescence response of the J-aggregates and coupled systems reveals the impact of the coupling regime. Utilizing fluorescence lifetime imaging microscopy, we established how the photoluminescence lifetime components of the J-aggregates are affected within the plexcitonic system. Finally, to assess the photodegradation of J-aggregates and plexcitonic systems, we conducted a comparative analysis. Our findings reveal that plasmon-enhanced interactions lead to improved photostability in hybrid systems.
基于金属纳米结构和分子J-聚集体的激子-等离子体激元系统为探索等离子体激元激发与激子之间有趣的相互作用提供了绝佳机会,能让我们对纳米尺度下的光与物质相互作用有独特的见解。它们在光催化方面的潜在应用促使人们对其合成及其性质分析的兴趣日益浓厚。然而,为了构建一个高性能的系统,确保两个组件之间的化学和光谱兼容性至关重要。我们展示了一项关于通过金纳米双锥体与有机分子耦合实现的混合系统的研究结果,并证明了与纯J-聚集体相比,这种系统具有更强的光化学性质。我们的分析包括该系统的吸光度和光致发光表征,揭示了显著的激子-等离子体激元相互作用和明显的耦合效应。混合系统的吸光光谱能够研究耦合强度(g)。此外,J-聚集体和耦合系统的光致发光响应揭示了耦合机制的影响。利用荧光寿命成像显微镜,我们确定了激子-等离子体激元系统中J-聚集体的光致发光寿命成分是如何受到影响的。最后,为了评估J-聚集体和激子-等离子体激元系统的光降解情况,我们进行了对比分析。我们的研究结果表明,等离子体增强相互作用导致混合系统中的光稳定性得到改善。