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基于荧光蛋白的环保高效发光太阳能集中器。

Ecofriendly and Efficient Luminescent Solar Concentrators Based on Fluorescent Proteins.

出版信息

ACS Appl Mater Interfaces. 2019 Mar 6;11(9):8710-8716. doi: 10.1021/acsami.9b00147. Epub 2019 Feb 22.

Abstract

In recent years, luminescent solar concentrators (LSCs) have received renewed attention as a versatile platform for large-area, high-efficiency, and low-cost solar energy harvesting. So far, artificial or engineered optical materials, such as rare-earth ions, organic dyes, and colloidal quantum dots (QDs) have been incorporated into LSCs. Incorporation of nontoxic materials into efficient device architectures is critical for environmental sustainability and clean energy production. Here, we demonstrated LSCs based on fluorescent proteins, which are biologically produced, ecofriendly, and edible luminescent biomaterials along with exceptional optical properties. We synthesized mScarlet fluorescent proteins in Escherichia coli expression system, which is the brightest protein with a quantum yield of 61% in red spectral region that matches well with the spectral response of silicon solar cells. Moreover, we integrated fluorescent proteins in an aqueous medium into solar concentrators, which preserved their quantum efficiency in LSCs and separated luminescence and wave-guiding regions due to refractive index contrast for efficient energy harvesting. Solar concentrators based on mScarlet fluorescent proteins achieved an external LSC efficiency of 2.58%, and the integration at high concentrations increased their efficiency approaching to 5%, which may facilitate their use as "luminescent solar curtains" for in-house applications. The liquid-state integration of proteins paves a way toward efficient and "green" solar energy harvesting.

摘要

近年来,作为一种用于大面积、高效率和低成本太阳能收集的通用平台,发光太阳能集中器(LSCs)重新引起了人们的关注。到目前为止,已经将人工或工程光学材料,例如稀土离子、有机染料和胶体量子点(QD)掺入到 LSCs 中。将无毒材料纳入高效器件结构对于环境可持续性和清洁能源生产至关重要。在这里,我们展示了基于荧光蛋白的 LSCs,荧光蛋白是生物合成的、环保的和可食用的发光生物材料,具有出色的光学性能。我们在大肠杆菌表达系统中合成了 mScarlet 荧光蛋白,这是一种最亮的蛋白,在红色光谱区域的量子产率为 61%,与硅太阳能电池的光谱响应非常匹配。此外,我们将荧光蛋白集成在水溶液中到太阳能集中器中,由于折射率对比,在 LSCs 中保留了它们的量子效率,并分离了发光和波导区域,从而实现高效的能量收集。基于 mScarlet 荧光蛋白的太阳能集中器实现了 2.58%的外部 LSC 效率,并且在高浓度下进行集成可以将其效率提高到接近 5%,这可能有助于将其用作室内应用的“发光太阳能窗帘”。蛋白质的液态集成为高效和“绿色”太阳能收集铺平了道路。

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