Kodis Gerdenis, Terazono Yuichi, Liddell Paul A, Andréasson Joakim, Garg Vikas, Hambourger Michael, Moore Thomas A, Moore Ana L, Gust Devens
Department of Chemistry and Biochemistry, Center for the Study of Early Events in Photosynthesis, Arizona State University, Tempe, AZ 85287-1604, USA.
J Am Chem Soc. 2006 Feb 15;128(6):1818-27. doi: 10.1021/ja055903c.
Functional mimics of a photosynthetic antenna-reaction center complex comprising five bis(phenylethynyl)anthracene antenna moieties and a porphyrin-fullerene dyad organized by a central hexaphenylbenzene core have been prepared and studied spectroscopically. The molecules successfully integrate singlet-singlet energy transfer and photoinduced electron transfer. Energy transfer from the five antennas to the porphyrin occurs on the picosecond time scale with a quantum yield of 1.0. Comparisons with model compounds and theory suggest that the Förster mechanism plays a major role in the extremely rapid energy transfer, which occurs at rates comparable to those seen in some photosynthetic antenna systems. A through-bond, electron exchange mechanism also contributes. The porphyrin first excited singlet state donates an electron to the attached fullerene to yield a P(+)-C(60)(-) charge-separated state, which has a lifetime of several nanoseconds. The quantum yield of charge separation based on light absorbed by the antenna chromophores is 80% for the free base molecule and 96% for the zinc analogue.
已制备出一种由中心六苯基苯核心组织的、包含五个双(苯乙炔基)蒽天线部分和一个卟啉 - 富勒烯二元体的光合天线 - 反应中心复合物的功能模拟物,并对其进行了光谱研究。这些分子成功整合了单重态 - 单重态能量转移和光致电子转移。从五个天线到卟啉的能量转移在皮秒时间尺度上发生,量子产率为1.0。与模型化合物和理论的比较表明,Förster机制在极快速的能量转移中起主要作用,其发生速率与一些光合天线系统中的速率相当。一种通过键的电子交换机制也有贡献。卟啉的第一激发单重态将一个电子给予连接的富勒烯,产生一个寿命为几纳秒的P(* +)-C60(* -)电荷分离态。基于天线发色团吸收的光,电荷分离的量子产率对于游离碱分子为80%,对于锌类似物为96%。