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一种包含活体光合细菌的纳米光子结构。

A Nanophotonic Structure Containing Living Photosynthetic Bacteria.

机构信息

Department of Physics and Astronomy, University of Sheffield, Sheffield, S3 7RH, UK.

Department of Materials, University of Oxford, Sheffield, OX1 3PH, UK.

出版信息

Small. 2017 Oct;13(38). doi: 10.1002/smll.201701777. Epub 2017 Aug 15.

Abstract

Photosynthetic organisms rely on a series of self-assembled nanostructures with tuned electronic energy levels in order to transport energy from where it is collected by photon absorption, to reaction centers where the energy is used to drive chemical reactions. In the photosynthetic bacteria Chlorobaculum tepidum, a member of the green sulfur bacteria family, light is absorbed by large antenna complexes called chlorosomes to create an exciton. The exciton is transferred to a protein baseplate attached to the chlorosome, before migrating through the Fenna-Matthews-Olson complex to the reaction center. Here, it is shown that by placing living Chlorobaculum tepidum bacteria within a photonic microcavity, the strong exciton-photon coupling regime between a confined cavity mode and exciton states of the chlorosome can be accessed, whereby a coherent exchange of energy between the bacteria and cavity mode results in the formation of polariton states. The polaritons have energy distinct from that of the exciton which can be tuned by modifying the energy of the optical modes of the microcavity. It is believed that this is the first demonstration of the modification of energy levels within living biological systems using a photonic structure.

摘要

光合生物依赖于一系列自组装的纳米结构,这些结构具有调谐的电子能级,以便将能量从光子吸收的地方传输到反应中心,在反应中心,能量用于驱动化学反应。在光合细菌绿硫菌属的中温绿菌(Chlorobaculum tepidum)中,光被称为聚光体的大型天线复合物吸收,产生激子。激子被转移到附着在聚光体上的蛋白质基板上,然后通过 Fenna-Matthews-Olson 复合物迁移到反应中心。在这里,通过将活的中温绿菌(Chlorobaculum tepidum)细菌置于光子微腔中,可以进入受限腔模与聚光体的激子态之间的强激子-光子耦合状态,从而导致细菌和腔模之间的能量进行相干交换,形成极化激元态。极化激元的能量与激子的能量不同,通过修饰微腔的光学模式的能量可以对其进行调谐。据信,这是首次使用光子结构来修饰活的生物系统内的能级。

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