Progress on gas-solid phase photoreactor and its application in CO2 reduction

IF 9.1 Q1 ENGINEERING, CHEMICAL
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Abstract

The burgeoning field of photocatalytic reduction of CO2 has emerged as a remarkable promising solution to address some of the most pressing global energy and environmental issues which we face today. Researchers around the global have been striving to augment the efficiency of CO2 photocatalytic reduction, employing strategies that range from modifying the fundamental properties of photocatalysts to suppress the electron-hole recombination, optimizing reaction conditions to achieve the highest yield, and conceptualizing and constructing photoreactors to improve the adsorption process. Among these factors, the photoreactor plays a critical role in enhancing the overall photocatalytic efficiency. Understanding the various types of photoreactors and their operational dynamic can significantly influence the experimental design, thus guiding the data collecting and analysis. Compared to the solid-liquid phase, gas-solid phase photocatalytic reduction of CO2 is gaining recognition for its potential advantages, such as rapid molecular diffusion rates, adjustable CO2 concentrations, and uniform and sufficient light exposure. Nonetheless, the currently reported gas-solid phase photoreactors are still in their infancy. In this review, we dissect the underlying mechanism of photocatalytic CO2 reduction and the performance evaluation criteria of photoreactors, and review the development process of gas-solid phase photoreactors. Furthermore, we explore the evolution of gas-solid phase photoreactors, elucidating their growth trajectory and future possibilities. We present a comprehensive classification of gas-solid phase photoreactors, offering a new insight into their design and functionality, summarizing their strengths and inevitable limitations. Finally, we provide a forward-looking perspective on the future developmental prospects of carbon neutrality.

Abstract Image

气固相光反应器及其在CO2还原中的应用研究进展
光催化还原二氧化碳这一新兴领域已成为解决当今全球能源和环境最紧迫问题的一个极具前景的解决方案。全球各地的研究人员一直在努力提高二氧化碳光催化还原的效率,所采用的策略包括改变光催化剂的基本特性以抑制电子-空穴重组、优化反应条件以获得最高产率,以及构思和建造光反应器以改进吸附过程。在这些因素中,光反应器对提高整体光催化效率起着至关重要的作用。了解各种类型的光反应器及其运行动态可以极大地影响实验设计,从而指导数据收集和分析。与固-液相相比,气-固相光催化还原二氧化碳的潜在优势正逐渐得到认可,如分子扩散速度快、二氧化碳浓度可调、光照均匀且充足等。然而,目前报道的气固相光反应器仍处于起步阶段。在这篇综述中,我们剖析了光催化二氧化碳还原的基本机制和光反应器的性能评估标准,并回顾了气固相光反应器的开发过程。此外,我们还探讨了气固相光反应器的演变,阐明了其发展轨迹和未来的可能性。我们对气固相光反应器进行了全面分类,对其设计和功能提出了新的见解,总结了它们的优势和不可避免的局限性。最后,我们从前瞻性的角度展望了碳中和的未来发展前景。
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来源期刊
Green Chemical Engineering
Green Chemical Engineering Process Chemistry and Technology, Catalysis, Filtration and Separation
CiteScore
11.60
自引率
0.00%
发文量
58
审稿时长
51 days
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