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Dual-film optofluidic microreactor with enhanced light-harvesting for photocatalytic applications

机译:双膜优质流体微反应器,具有增强光催化应用的浅收炉

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摘要

Optofluidic microreactors are promising platform for photocatalytic reactions. However, the light transmission phenomenon is serious in optofluidic microreactors which makes a part of solar energy lose in surroundings. To resolve this problem, in this work, a novel dual-film optofluidic microreactor is proposed and fabricated by immobilizing TiO2 nanorod arrays on both the top and bottom internal wall of the microchamber. Such dual-film structure enables the transmitted light to be utilized by the bottom TiO2 film instead of being wasted, thus improving the light-harvesting capacity of optofluidic microreactor. Moreover, TiO2 nanorod arrays are employed as the photocatalytic film in this optofluidic microreactor to enlarge the specific surface area and facilitate the mass transfer. The photocatalytic performance and the kinetic properties of the dual-film optofluidic microreactor are evaluated by photocatalytic degradation of methylene blue. Results show that the proposed dual-film optofluidic microreactor yielded much higher degradation efficiency than the conventional one as a result of enhanced light-harvesting and improved mass transfer. In addition, the long-term testing proves that the durability of the dual-film optofluidic microreactor can be improved by operating it in a periodically rotated manner. In short, the TiO2 nanorod arrays-based dual-film optofluidic microreactor exhibits efficient light-harvesting and high durability and shows promising potential for photocatalytic applications.
机译:优化微量反应器是光催化反应的有希望平台。然而,光传输现象是严重的optovicic微反应器,这使得一部分太阳能失去环境。为了解决这个问题,在这项工作中,通过将TiO2纳米棒阵列固定在微芯片的顶部和底部内壁上,提出并制造了一种新型的双膜优化微型微反应器。这种双膜结构使得底部TiO2薄膜的透射光能够而不是被浪费,从而改善了晶体流体微反应器的光收集能力。此外,TiO2纳米棒阵列用作该晶体流体微反应器中的光催化膜,以扩大比表面积并促进传质。通过光催化降解亚甲基蓝色的光催化性能和双膜晶体微晶体的动力学性能和动力学性能。结果表明,由于增强光收获和改善的传质,所提出的双膜优化微流体微反应器比传统的常规效率高得多。此外,通过以周期性旋转的方式操作,长期测试证明了双膜优化微反应器的耐久性。简而言之,基于TiO2纳米杆阵列的双膜晶体流体微反应器表现出高效的光收获和高耐久性,并且显示了光催化应用的有希望的电位。

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