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Confinement Effect of Micro- and Mesoporous Materials on the Spectroscopy and Dynamics of a Stilbene Derivative Dye

机译:微孔和中孔材料对二苯乙烯衍生物染料的光谱和动力学的限制作用

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摘要

Micro- and mesoporous silica-based materials are a class of porous supports that can encapsulate different guest molecules. The formation of these hybrid complexes can be associated with significant alteration of the physico-chemical properties of the guests. Here, we report on a photodynamical study of a push–pull molecule, trans-4-(dicyanomethylene)-2-methyl-6-(4-dimethylaminostyryl)-4H-pyran (DCM), entrapped within faujasite-type zeolites (HY, NaX, and NaY) and MCM-41 in dichloromethane suspensions. The complex formation gives rise to caged monomers and H- and J-aggregates. Steady-state experiments show that the nanoconfinement provokes net blue shifts of both the absorption and emission spectra, which arise from preferential formation of H-aggregates concomitant with a distortion and/or protonation of the DCM structure. The photodynamics of the hybrid complexes are investigated by nano- to picosecond time-resolved emission experiments. The obtained fluorescence lifetimes are 65–99 ps and 350–400 ps for H- and J-aggregates, respectively, while those of monomers are 2.46–3.87 ns. Evidences for the presence of a charge-transfer (CT) process in trapped DCM molecules (monomers and/or aggregates) are observed. The obtained results are of interest in the interpretation of electron-transfer processes, twisting motions of analogues push–pull systems in confined media and understanding photocatalytic mechanisms using this type of host materials.
机译:微孔和中孔二氧化硅基材料是一类多孔载体,可以封装不同的客体分子。这些杂合复合物的形成可能与客体的物理化学性质发生重大变化有关。在这里,我们报道了一种被困在八面沸石(HY)中的推挽分子反式-4-(二氰基亚甲基)-2-甲基-6-(4-二甲基氨基苯乙烯基)-4H-吡喃(DCM)的光动力学研究。 ,NaX和NaY)和MCM-41的二氯甲烷悬浮液中。络合物的形成引起笼状单体以及H-和J-聚集体。稳态实验表明,纳米约束引起了吸收光谱和发射光谱的净蓝移,这是由优先形成的H聚集体伴随着DCM结构的扭曲和/或质子化引起的。通过纳秒至皮秒时间分辨的发射实验研究了杂合配合物的光动力学。 H和J聚集体的荧光寿命分别为65–99 ps和350–400 ps,而单体的荧光寿命为2.46–3.87 ns。观察到在捕获的DCM分子(单体和/或聚集体)中存在电荷转移(CT)过程的证据。所得结果对解释电子传输过程,在受限介质中类似物推挽系统的扭转运动以及了解使用此类基质材料的光催化机理具有重要意义。

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