Takada Tadao, Ido Misa, Ashida Akane, Nakamura Mitsunobu, Fujitsuka Mamoru, Kawai Kiyohiko, Majima Tetsuro, Yamana Kazushige
Department of Materials Science and Chemistry, Graduate School of Engineering, University of Hyogo, 2167 Shosha, Himeji, Hyogo 671-2280 (Japan).
Chemistry. 2015 Apr 27;21(18):6846-51. doi: 10.1002/chem.201406592. Epub 2015 Mar 17.
The charge-transfer process in noncovalent perylenediimide (PDI)/DNA complexes has been investigated by using nanosecond laser flash photolysis (LFP) and photocurrent measurements. The PDI/DNA complexes were prepared by inclusion of cationic PDI molecules into the artificial cavities created inside DNA. The LFP experiments showed that placement of the PDI chromophore at a specific site and included within the base stack of DNA led to the efficient generation of a charge-separated state with a long lifetime by photoexcitation. When two PDI chromophores were separately placed at different positions in DNA, the yield of the charge-separated state with a long lifetime was dependent upon the number of A-T base pairs between the PDIs, which was explained by electron hopping from one PDI to another. Photocurrent generation of the DNA-modified electrodes with the complex was also dependent upon the arrangement of the PDI chromophores. A good correlation was obtained between observed charge separation and photocurrent generation on the PDI/DNA-modified electrodes, which demonstrated the importance of the defined arrangement and assembly of organic chromophores in DNA for efficient charge separation and transfer in multichromophore arrays.
通过纳秒激光闪光光解(LFP)和光电流测量研究了非共价苝二酰亚胺(PDI)/DNA复合物中的电荷转移过程。通过将阳离子PDI分子纳入DNA内部形成的人工腔体制备了PDI/DNA复合物。LFP实验表明,将PDI发色团置于特定位置并包含在DNA的碱基堆积中,通过光激发可有效产生具有长寿命的电荷分离态。当两个PDI发色团分别置于DNA的不同位置时,具有长寿命的电荷分离态的产率取决于PDI之间A-T碱基对的数量,这可通过电子从一个PDI跳跃到另一个PDI来解释。带有该复合物的DNA修饰电极的光电流产生也取决于PDI发色团的排列。在PDI/DNA修饰电极上观察到的电荷分离和光电流产生之间获得了良好的相关性,这证明了DNA中有机发色团的明确排列和组装对于多发色团阵列中有效电荷分离和转移的重要性。