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Integration of Artificial Photosynthesis System for Enhanced Electronic Energy-Transfer Efficacy: A Case Study for Solar-Energy Driven Bioconversion of Carbon Dioxide to Methanol

机译:集成人工光合作用系统以增强电子能量传输效率:以太阳能为驱动力的二氧化碳生物转化为甲醇的案例研究

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Bmiocatalyzed artificial photosynthesis systems provide a promising strategy to store solar energy in a great variety of chemicals. However, the lack of direct interface between the light-capturing components and the oxidoreductase generally hinders the trafficking of the chemicals and photo-excited electrons into the active center of the redox biocatalysts. To address this problem, a completely integrated artificial photosynthesis system for enhanced electronic energy-transfer efficacy is reported by combining co-axial electrospinning/electrospray and layer-by-layer (LbL) self-assembly. The biocatalysis part including multiple oxidoreductases and coenzymes NAD(H) was in situ encapsulated inside the lumen polyelectrolyte-doped hollow nanofibers or microcapsules fabricated via co-axial electrospinning/electrospray; while the precise and spatial arrangement of the photocatalysis part, including electron mediator and photosensitizer for photo-regeneration of the coenzyme, was achieved by ion-exchange interaction-driven LbL self-assembly. The feasibility and advantages of this integrated artificial photosynthesis system is fully demonstrated by the catalyzed cascade reduction of CO2 to methanol by three dehydrogenases (formate, formaldehyde, and alcohol dehydrogenases), incorporating the photo-regeneration of NADH under visible-light irradiation. Compared to solution-based systems, the methanol yield increases from 35.6% to 90.6% using the integrated artificial photosynthesis. This work provides a novel platform for the efficient and sustained production of a broad range of chemicals and fuels from sunlight.
机译:受光催化的人工光合作用系统提供了一种有前途的策略,可以将太阳能存储在多种化学药品中。然而,光捕获组分和氧化还原酶之间缺乏直接界面,​​通常阻碍了化学物质和光激发电子向氧化还原生物催化剂活性中心的运输。为了解决这个问题,通过结合同轴电纺丝/电喷雾和逐层(LbL)自组装,报道了一种完全集成的人工光合作用系统,用于增强电子能量转移功效。将包含多种氧化还原酶和辅酶NAD(H)的生物催化部分原位封装在通过同轴电纺丝/电喷雾制备的内腔聚电解质掺杂空心纳米纤维或微胶囊内部;通过离子交换相互作用驱动的LbL自组装,实现了光催化部分的精确和空间排列,包括电子介体和光敏剂,用于辅酶的光再生。通过三种脱氢酶(甲酸酯,甲醛和醇脱氢酶)催化NA2在可见光照射下的光再生,可将CO2级联还原为甲醇,从而充分证明了这种集成的人工光合作用系统的可行性和优势。与基于溶液的系统相比,使用集成的人工光合作用,甲醇的产率从35.6%增加到90.6%。这项工作提供了一个新颖的平台,可以有效,持续地从阳光中生产各种化学品和燃料。

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