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通过飞秒偏振分辨可见泵浦-红外探测光谱法确定叶绿素a分子内Qy电子跃迁偶极矩的三维取向。

Three-dimensional orientation of the Qy electronic transition dipole moment within the chlorophyll a molecule determined by femtosecond polarization resolved VIS pump-IR probe spectroscopy.

作者信息

Linke Martin, Lauer Alexandra, von Haimberger Theodore, Zacarias Angelica, Heyne Karsten

机构信息

Freie Universität Berlin, Department of Physics, Arnimallee 14, 14195 Berlin, Germany.

出版信息

J Am Chem Soc. 2008 Nov 12;130(45):14904-5. doi: 10.1021/ja804096s. Epub 2008 Oct 17.

Abstract

Chlorophyll a (Chl a) is the most abundant pigment on earth. In all plants, algae, and cyanobacteria, it plays a pivotal role as an antenna and reaction center pigment in the primary steps of photosynthesis. In the past, a true three-dimensional (3D) experimental determination of the Qy electronic transition dipole moment orientation could not be obtained. With combined femtosecond polarization resolved VIS pump-IR probe experiments and theoretical calculations of the infrared transition dipole moments (tdm's) in the electronic ground state, we determined the 3D orientation of the Qy electronic tdm of Chl a within the molecular structure. Polarization resolved experiments provided angles of the Qy electronic tdm with three different infrared tdm's, whose orientations within the molecular structure were taken from our theoretical calculations. The orientation of the Qy tdm results from the intersection of all three angles and was found to have an angle of (78 +/- 3)degrees with the x-axis, (12 3)degrees with the y-axis, and (86 +/- 2)degrees with the z-axis.

摘要

叶绿素a(Chl a)是地球上含量最为丰富的色素。在所有植物、藻类和蓝细菌中,它作为光合作用初级阶段的天线色素和反应中心色素发挥着关键作用。过去,无法获得对Qy电子跃迁偶极矩取向的真实三维(3D)实验测定结果。通过飞秒偏振分辨可见泵浦-红外探测实验与电子基态下红外跃迁偶极矩(tdm)的理论计算相结合,我们确定了叶绿素a的Qy电子tdm在分子结构内的三维取向。偏振分辨实验给出了Qy电子tdm与三种不同红外tdm的夹角,这些红外tdm在分子结构内的取向取自我们的理论计算。Qy tdm的取向由所有这三个夹角的交点确定,结果发现其与x轴的夹角为(78±3)度,与y轴的夹角为(12±3)度,与z轴的夹角为(86±2)度。

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