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Direct local solvent probing by transient infrared spectroscopy reveals the mechanism of hydrogen-bond induced nonradiative deactivation

机译:通过瞬态红外光谱直接进行局部溶剂探测揭示了氢键诱导的非辐射失活的机理

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The fluorescence quenching of organic dyes via H-bonding interactions is a well-known phenomenon. However, the mechanism of this Hydrogen-Bond Induced Nonradiative Deactivation (HBIND) is not understood. Insight into this process is obtained by probing in the infrared the O–H stretching vibration of the solvent after electronic excitation of a dye with H-bond accepting cyano groups. The fluorescence lifetime of this dye was previously found to decrease from 1.5 ns to 110 ps when going from an aprotic solvent to the strongly protic hexafluoroisopropanol (HFP). Prompt strengthening of the H-bond with the dye was identified by the presence of a broad positive O–H band of HFP, located at lower frequency than the O–H band of the pure solvent. Further strengthening occurs within a few picoseconds before the excited H-bonded complex decays to the ground state in 110 ps. The latter process is accompanied by the dissipation of energy from the dye to the solvent and the rise of a characteristic hot solvent band in the transient spectrum. Polarization-resolved measurements evidence a collinear alignment of the nitrile and hydroxyl groups in the H-bonded complex, which persists during the whole excited-state lifetime. Measurements in other fluorinated alcohols and in chloroform/HFP mixtures reveal that the HBIND efficiency depends not only on the strength of the H-bond interactions between the dye and the solvent but also on the ability of the solvent to form an extended H-bond network. The HBIND process can be viewed as an enhanced internal conversion of an excited complex consisting of the dye molecule connected to a large H-bond network.
机译:通过H键相互作用 对有机染料进行荧光猝灭是众所周知的现象。但是,这种氢键诱导的非辐射失活(HBIND)的机理尚不清楚。通过在电子中激发带有氢键的氰基基团的染料后,在红外中探测溶剂的O–H拉伸振动,可以深入了解该过程。从非质子溶剂变成强质子六氟异丙醇(HFP)时,以前发现该染料的荧光寿命从1.5 ns降至110 ps。通过存在宽广的HFP正O-H谱带可以确定染料与氢键的快速增强,该谱带的频率低于纯溶剂的O-H谱带。在激发的H键结合的复合物在110 ps内衰减到基态之前,会在几皮秒内发生进一步的增强。后一个过程伴随着能量从染料到溶剂的耗散以及瞬态光谱中特征性热溶剂带的上升。极化分辨的测量结果表明,在与H键合的配合物中,腈和羟基呈共线排列,并在整个激发态寿命中持续存在。在其他氟化醇和氯仿/ HFP混合物中的测量结果表明,HBIND效率不仅取决于染料与溶剂之间的氢键相互作用强度,而且还取决于溶剂形成扩展的氢键网络的能力。 。 HBIND过程可以看作是激发的复合物的增强的内部转化,该复合物由连接到大H键网络的染料分子组成。

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