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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Scale-up of a Luminescent Solar Concentrator-Based Photomicroreactor via Numbering-up
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Scale-up of a Luminescent Solar Concentrator-Based Photomicroreactor via Numbering-up

机译:通过编号扩展的基于发光太阳能聚光器的光学摩擦器的缩放

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摘要

The use of solar energy to power chemical reactions is a long-standing dream of the chemical community. Recently, visible-light-mediated photoredox catalysis has been recognized as the ideal catalytic transformation to convert solar energy into chemical bonds. However, scaling photochemical transformations has been extremely challenging due to Bouguer Lambert Beer law. Recently, we have pioneered the development of luminescent solar concentrator photo-microreactors (LSC-PMs), which display an excellent energy efficiency. These devices harvest solar energy, convert the broad solar energy spectrum to a narrow-wavelength region, and subsequently waveguide the re-emitted photons to the reaction channels. Herein, we report on the scalability of such LSC-PMs via a numbering-up strategy. Paramount in our work was the use of molds that were fabricated via 3D printing. This allowed us to rapidly produce many different prototypes and to optimize experimentally key design aspects in a time-efficient fashion. Reactors up to 32 parallel channels have been fabricated that display an excellent flow distribution using a bifurcated flow distributor (standard deviations below 10%). This excellent flow distribution was crucial to scale up a model reaction efficiently, displaying yields comparable to those obtained in a single-channel device. We also found that interchannel spacing is an important and unique design parameter for numbered-up LSC-PMs, which influences greatly the photon flux experienced within the reaction channels.
机译:利用太阳能到电力化学反应是化学界的长期梦想。最近,可见光介导的Photoredox催化已被认为是将太阳能转化为化学键的理想催化转化。然而,由于Bouger Lambert Beer Law,扩展的光化学转换非常具有挑战性。最近,我们已经开发了发光太阳能聚光器照片微反应器(LSC-PM)的开发,其显示出优异的能量效率。这些器件收获太阳能,将广泛的太阳能谱转换为窄波长区域,随后将重新发射的光子波导到反应通道上。这里,我们通过编号策略报告这种LSC-PM的可扩展性。在我们的工作中最重要的是使用通过3D印刷制造的模具。这使我们能够迅速产生许多不同的原型,并以节省的方式优化实验关键设计方面。已经制造了高达32个平行通道的反应器,其使用分叉的流量分配器(低于10%的标准偏差)显示出优异的流量分布。这种优异的流动分布对于有效地扩展模型反应至关重要,显示与在单通道装置中获得的产生的产率。我们还发现,InterChannel间距是编号LSC-PM的重要和独特的设计参数,这极大地影响了反应通道内经历的光子磁通量。

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  • 作者单位

    Eindhoven Univ Technol Dept Chem Engn &

    Chem Micro Flow Chem &

    Proc Technol Den Dolech 2 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Dept Chem Engn &

    Chem Micro Flow Chem &

    Proc Technol Den Dolech 2 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Dept Chem Engn &

    Chem Micro Flow Chem &

    Proc Technol Den Dolech 2 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Dept Chem Engn &

    Chem Micro Flow Chem &

    Proc Technol Den Dolech 2 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Dept Chem Engn &

    Chem Micro Flow Chem &

    Proc Technol Den Dolech 2 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Dept Chem Engn &

    Chem Micro Flow Chem &

    Proc Technol Den Dolech 2 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Dept Chem Engn &

    Chem Funct Organ Mat &

    Devices Den Dolech 2 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Dept Chem Engn &

    Chem Micro Flow Chem &

    Proc Technol Den Dolech 2 NL-5600 MB Eindhoven Netherlands;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    Photomicroreactor; Luminescent solar concentrator; Solar energy; Numbering-up; Photochemistry;

    机译:光学造物反应器;发光太阳能集中器;太阳能;编号;光化学;

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