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Production and performance of a Photosystem I-based solar cell using nano-columnar TiO2

机译:使用纳米柱状TiO2的基于光系统I的太阳能电池的生产和性能

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To meet the world's growing energy demands in a renewable and cost-effective manner, Photosystem I has been studied as a model for solar energy capture. Previous work has demonstrated the ability to construct low cost biohybrid solar cells using Photosystem I and specialty surfactants onto metal oxide surfaces. Electrospray deposition has also been used for adsorption of plant proteins onto metal oxide surfaces. Attachment of Photosystem I onto nanostructured materials increases the surface area and activity of biohybrid solar cells. Recent work has shown that Photosystem I can be attached to metal oxide surfaces without using linkers and maintain high current density. However, the current density of the surface decreases over the course of weeks (unpublished data). This work investigated the performance of Photosystem I-based solar cells manufactured using electrospray deposition. Photosystem I was successfully deposited onto metal oxide surfaces, and current densities of up to 6.84 mA/cm2 were measured. Different amounts of protein were deposited and the solar performance was tested for each cell. It was shown that very small and very large amounts of PS I increase the current density, but there is an intermediate regime where performance drops. This intermediate regime was attributed to a shading effect of the protein on the surface and self-assembly effects of the protein on the surface.
机译:为了以可再生且具有成本效益的方式满足世界上不断增长的能源需求,已经研究了Photosystem I作为太阳能捕获的模型。先前的工作证明了使用Photosystem I和特种表面活性剂在金属氧化物表面上构造低成本生物杂交太阳能电池的能力。电喷雾沉积也已经用于将植物蛋白吸附到金属氧化物表面上。光系统I在纳米结构材料上的附着增加了生物混合太阳能电池的表面积和活性。最近的工作表明,无需使用连接器即可将Photosystem I连接至金属氧化物表面,并保持高电流密度。但是,表面的电流密度会在数周内下降(未发布的数据)。这项工作调查了使用电喷雾沉积制造的基于Photosystem I的太阳能电池的性能。光系统I成功地沉积在金属氧化物表面上,测量的电流密度高达6.84 mA / cm 2 。沉积了不同量的蛋白质,并测试了每个电池的日照性能。结果表明,非常少量和非常大量的PS I会增加电流密度,但是存在一种中间机制,性能会下降。该中间机制归因于蛋白质在表面上的遮蔽作用和蛋白质在表面上的自组装作用。

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