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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Microenvironment alterations enhance photocurrents from photosystem I confined in supported lipid bilayers
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Microenvironment alterations enhance photocurrents from photosystem I confined in supported lipid bilayers

机译:微环境改变增强光电流从照相我限制在支持的脂质双层中

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Transmembrane photosynthetic proteins, photosystem I (PSI), are nano-scale biological photodiodes that enable light-activated unidirectional electron flow. The robust photochemical properties of PSI make it a promising candidate for harnessing solar energy. However, the role of natural membrane confinements of PSI in orchestrating this photoactivated charge separation with near unity quantum efficiency, which is central to the rational design of PSI-based energy conversion systems, is still ill-understood. Motivated by this lack of fundamental understanding, herein we investigate the photoactivity of biomimetic constructs of cyanobacterial PSI encapsulated within solid-supported lipid bilayers (SLB) assembled on electrodes. PSI confined in SLBs is assembled from PSI-proteoliposomes that are synthesized from our recently developed facile routes for engineering negatively charged phospholipid (DPhPG) bilayer membranes. Specifically, detailed chronoamperometry measurements have been used to investigate photocurrent variations arising from the SLBs supported on self-assembled monolayer (SAM) substrates. These measurements, in conjunction with cryo-transmission electron microscopy, atomic force microscopy imaging and force spectroscopy, allow for direct visualization and detection of the SLBs of PSI-proteoliposomes on the substrates. Our results indicate the critical role of microenvironment alterations, heretofore not considered, in achieving similar to 4-5 fold enhancements in photocurrents generated from PSI complexes under SLB confinements as compared to those from a dense monolayer of equivalent concentrations of PSI on SAM substrates.
机译:跨膜光合蛋白,光系统I(PSI),是纳米级生物光电二极管,使光活化单向电子流。 PSI的强劲光化学特性使其成为利用太阳能的有希望的候选人。然而,PSI的天然膜接产的策划与接近统一的量子效率,这是中央基于PSI-能量转换系统的合理设计这种光敏电荷分离的作用,仍然是一知半解。通过这种缺乏基本理解激励,本文我们调查组装在电极固体负载的脂质双层(SLB)内包封的蓝藻PSI的仿生构建体的光活性。 PSI在密闭的SLB是从是从我们最近开发的简便途径合成工程负电荷的磷脂(DPhPG)双层膜PSI-脂蛋白组装。具体地,详细的计时电流测量已被用于研究从支撑在自组装单层(SAM)基板上的SLBs中所产生的光电流的变化。这些测量,在具有低温透射电子显微镜,原子力显微镜成像和光谱学的力相结合,允许直接可视化和在基板上PSI-脂蛋白体的SLBs中的检测。我们的结果表明微环境改变中的关键作用,迄今为止没有考虑,在相比于那些从SAM基板PSI的当量浓度的密集单层实现从下SLB分娩PSI络合物产生的光电流类似于4-5倍的增强。

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