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Advances in Spiropyrans/Spirooxazines and Applications Based on Fluorescence Resonance Energy Transfer (FRET) with Fluorescent Materials

机译:螺吡喃/螺恶嗪的研究进展及基于荧光材料的荧光共振能量转移(FRET)

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摘要

Studies on the following were reviewed: (1) the structure of spiropyrans and spirooxazines (two kinds of spiro compounds) under external stimuli and (2) the construction and applications of composite systems based on fluorescence resonance energy transfer (FRET) with fluorescent materials. When treated with different stimuli (light, acids and bases, solvents, metal ions, temperature, redox potential, and so on), spiropyrans/spirooxazines undergo transformations between the ring-closed form (SP), the ring-opened merocyanine (MC) form, and the protonated ring-opened form (MCH). This is due to the breakage of the spiro C–O bond and the protonation of MC, along with a color change. Various novel, multifunctional materials based on photochromic spiropyrans and spirooxazines have been successfully developed because of the vastly differently physiochemical properties posssed by the SP, MC and MCH forms. Among the three different structural forms, the MC form has been studied most extensively. The MC form not only gives complexes with various inorganic particles, biological molecules, and organic chemicals but also acts as the energy acceptor (of energy from fluorescent molecules) during energy transfer processes that take place under proper conditions. Furthermore, spiropyran and spirooxazine compounds exhibit reversible physicochemical property changes under proper stimuli; this provides more advantages compared with other photochromic compounds. Additionally, the molecular structures of spiropyrans and spirooxazines can be easily modified and extended, so better compounds can be obtained to expand the scope of already known applications. Described in detail are: (1) the structural properties of spiropyrans and spirooxazines and related photochromic mechanisms; (2) composite systems based on spiropyrans and spirooxazines, and (3) fluorescent materials which have potential applications in sensing, probing, and a variety of optical elements.
机译:对以下研究进行了综述:(1)在外部刺激下螺吡喃和螺恶嗪(两种螺化合物)的结构;(2)基于荧光材料的荧光共振能量转移(FRET)的复合体系的构建和应用。当用不同的刺激(光,酸和碱,溶剂,金属离子,温度,氧化还原电势等)处理时,螺吡喃/螺恶嗪在闭环形式(SP)和开环花菁(MC)之间发生转化形式和质子化的开环形式(MCH)。这是由于螺线C–O键的断裂和MC的质子化以及颜色的变化。由于SP,MC和MCH形式具有很大的不同的理化性质,已经成功开发了各种基于光致变色螺吡喃和螺恶嗪的新型多功能材料。在三种不同的结构形式中,对MC形式的研究最为广泛。 MC形式不仅可以与各种无机颗粒,生物分子和有机化学物质形成络合物,而且还可以在适当条件下发生的能量转移过程中充当能量接收者(来自荧光分子的能量)。此外,螺吡喃和螺恶嗪化合物在适当的刺激下表现出可逆的理化性质变化。与其他光致变色化合物相比,这提供了更多优势。另外,螺吡喃和螺恶嗪的分子结构可以容易地修饰和扩展,因此可以获得更好的化合物以扩展已知应用的范围。具体描述如下:(1)螺吡喃和螺恶嗪的结构性质及相关的光致变色机理; (2)基于螺吡喃和螺恶嗪的复合系统,以及(3)荧光材料,在传感,探测和各种光学元件中具有潜在的应用。

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