Counter-Anion-Dependent Optical Properties of Cationic N22-Methylated Chlorophyll-a Derivatives

IF 1.9 4区 化学 Q2 CHEMISTRY, ORGANIC
Riko Ataka, Yuichi Kitagawa, Hitoshi Tamiaki
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Abstract

Methyl N22-methylpyropheophorbides-a with chloride or hexafluorophosphate were prepared by chemically modifying chlorophyll-a. The resulting product composed of cationic N-methylated chlorin and chloride anion exhibited visible absorption and fluorescence emission maxima in chloroform at longer wavelengths than those with hexafluorophosphate. Both the absorption and emission spectra of the former were hypsochromically shifted by change of the solvent from chloroform to methanol to give almost the same corresponding spectra of the latter independent of solvents. The apparent counter-anion dependency in chloroform and the specific solvent dependency in the N-methyl-chlorin with chloride are ascribable to the weak solvation of a hard chloride anion over soft hexafluorophosphate in chloroform and strong electrostatic interaction of the cationic chlorin with a chloride anion over hexafluorophosphate in chloroform as well as well solvation of both the anions in methanol. In addition, less emission of N-methyl-chlorin with chloride in chloroform would be due to partial fluorescence quenching based on the heavy atom effect of the adjacent chloride anion.

Abstract Image

阳离子 N22 甲基化叶绿素-a 衍生物的反阴离子光学特性
通过对叶绿素-a进行化学修饰,制备了含氯或六氟磷酸盐的n22 -甲基邻苯二甲酸甲酯。由阳离子n -甲基化氯和氯阴离子组成的产物在氯仿中表现出比六氟磷酸盐更长的可见光吸收和荧光发射最大值。当溶剂由氯仿变为甲醇时,前者的吸收光谱和发射光谱发生了次色移,使后者的吸收光谱和发射光谱与溶剂无关,几乎相同。氯仿中明显的反阴离子依赖性和n -甲基氯与氯的特定溶剂依赖性归因于硬氯阴离子在氯仿中对软六氟磷酸盐的弱溶剂化,阳离子氯与氯阴离子在氯仿中对六氟磷酸盐的强静电相互作用以及这两种阴离子在甲醇中的良好溶剂化。此外,n -甲基氯与氯仿中的氯一起较少的发射可能是由于基于相邻氯阴离子的重原子效应的部分荧光猝灭。
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来源期刊
CiteScore
3.60
自引率
11.10%
发文量
161
审稿时长
2.3 months
期刊介绍: The Journal of Physical Organic Chemistry is the foremost international journal devoted to the relationship between molecular structure and chemical reactivity in organic systems. It publishes Research Articles, Reviews and Mini Reviews based on research striving to understand the principles governing chemical structures in relation to activity and transformation with physical and mathematical rigor, using results derived from experimental and computational methods. Physical Organic Chemistry is a central and fundamental field with multiple applications in fields such as molecular recognition, supramolecular chemistry, catalysis, photochemistry, biological and material sciences, nanotechnology and surface science.
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