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一种含有螺吡喃和荧光素单元的新型二元化合物的合成与光谱研究:迈向单分子水平的信息处理

Synthesis and spectral investigations of a new dyad with spiropyran and fluorescein units: toward information processing at the single molecular level.

作者信息

Guo Xuefeng, Zhang Deqing, Zhou Yucheng, Zhu Daoben

机构信息

Organic Solids Laboratory, Center for Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100080, China.

出版信息

J Org Chem. 2003 Jul 11;68(14):5681-7. doi: 10.1021/jo034243w.

Abstract

A new dyad 1 with two spiropyran units as the photochromic acceptors and one fluorescein unit as the fluorescent donor was synthesized and characterized. External inputs (ultraviolet light, visible light, and proton) induce the reversible changes of the structure and, concomitantly, the absorption spectrum of dyad 1 due to the presence of two spiropyran units. Only the absorption spectrum of the ME form of the spiropyran units in dyad 1 has large spectral overlap with the fluorescence spectrum of the fluorescein unit. Thus, the fluorescence intensity of dyad 1 is modulated by reversible conversion among the three states of the photochromic spiropyran units and the fluorescence resonance energy transfer (FRET) between the ME form and the fluorescein unit. Based on the fact that dyad 1 could "read out" three external input signals (ultraviolet light, visible ligh,t and proton) and "write" a compatible specific output signal (fluorescence intensity), dyad 1 described here can be considered to perform an integrated circuit function with one OR and one AND interconnected logic gates. The present results demonstrate an efficient strategy for elaborating and transmitting information at the single molecular level.

摘要

合成并表征了一种新的二元化合物1,它含有两个作为光致变色受体的螺吡喃单元和一个作为荧光供体的荧光素单元。由于存在两个螺吡喃单元,外部输入(紫外线、可见光和质子)会引起二元化合物1的结构以及相应的吸收光谱发生可逆变化。只有二元化合物1中螺吡喃单元的ME形式的吸收光谱与荧光素单元的荧光光谱有较大的光谱重叠。因此,二元化合物1的荧光强度通过光致变色螺吡喃单元的三种状态之间的可逆转换以及ME形式与荧光素单元之间的荧光共振能量转移(FRET)来调节。基于二元化合物1能够“读出”三个外部输入信号(紫外线、可见光和质子)并“写入”一个兼容的特定输出信号(荧光强度)这一事实,这里描述的二元化合物1可以被认为执行了一个带有一个或门和一个与门相互连接的逻辑门的集成电路功能。目前的结果展示了一种在单分子水平上阐述和传输信息的有效策略。

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