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细菌叶绿素 c 聚集体的低温光谱。

Low-temperature spectroscopy of bacteriochlorophyll c aggregates.

机构信息

Department of Chemical Physics and Optics, Faculty of Mathematics and Physics, Charles University, Prague, Czech Republic,

出版信息

Photosynth Res. 2014 Mar;119(3):331-8. doi: 10.1007/s11120-013-9955-6. Epub 2013 Dec 8.

Abstract

Chlorosomes from green photosynthetic bacteria belong to the most effective light-harvesting antennas found in nature. Quinones incorporated in bacterichlorophyll (BChl) c aggregates inside chlorosomes play an important redox-dependent photo-protection role against oxidative damage of bacterial reaction centers. Artificial BChl c aggregates with and without quinones were prepared. We applied hole-burning spectroscopy and steady-state absorption and emission techniques at 1.9 K and two different redox potentials to investigate the role of quinones and redox potential on BChl c aggregates at low temperatures. We show that quinones quench the excitation energy in a similar manner as at room temperature, yet the quenching process is not as efficient as for chlorosomes. Interestingly, our data suggest that excitation quenching partially proceeds from higher excitonic states competing with ultrafast exciton relaxation. Moreover, we obtained structure-related parameters such as reorganization energies and inhomogeneous broadening of the lowest excited state, providing experimental ground for theoretical studies aiming at designing plausible large-scale model for BChl c aggregates including disorder.

摘要

来自绿色光合细菌的菌绿体属于自然界中发现的最有效的光收集天线。菌绿素(BChl)c 聚集体内部结合的类醌在依赖氧化还原的光保护中发挥着重要作用,可以防止细菌反应中心的氧化损伤。我们制备了有和没有类醌的人工 BChl c 聚集体。我们应用了孔烧光谱学和稳态吸收和发射技术,在 1.9 K 和两个不同的氧化还原电位下,研究了类醌和氧化还原电位对低温下 BChl c 聚集体的作用。我们表明,类醌以类似于室温下的方式猝灭激发能量,但猝灭过程不如菌绿体那样有效。有趣的是,我们的数据表明,激发猝灭部分来自于与超快激子弛豫竞争的更高激子态。此外,我们获得了与结构相关的参数,如重组能和最低激发态的非均匀展宽,为旨在设计包括无序在内的 BChl c 聚集体的合理大尺度模型的理论研究提供了实验依据。

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