School of Petrochemical Engineering & Environment, Zhejiang Ocean University, Zhoushan 316000, China.
Centre for Water, Energy and Waste, Harry Butler Institute, Murdoch University, Perth 6150, Australia.
Bioresour Technol. 2024 Jun;401:130718. doi: 10.1016/j.biortech.2024.130718. Epub 2024 Apr 18.
Recently, microalgae had received extensive attention for carbon capture and utilization. But its overall efficiency still could not reach a satisfactory degree. Artificial photosynthesis showed better efficiency in the conversion of carbon dioxide. However, artificial photosynthesis could generally only produce C1-C3 organic matters at present. Some studies showed that heterotrophic microalgae can efficiently synthesize high value organic matters by using simple organic matter such as acetate. Therefore, the combination of artificial photosynthesis with heterotrophic microalgae culture showed great potential for efficient carbon capture and high-value organic matter production. This article systematically analyzed the characteristics and challenges of carbon dioxide conversion by microalgae and artificial photosynthesis. On this basis, the coupling mode and development trend of artificial photosynthesis combined with microalgae culture were discussed. In summary, the combination of artificial photosynthesis and microalgae culture has great potential in the field of carbon capture and utilization, and deserves further study.
最近,微藻因其在碳捕获和利用方面的广泛应用而受到关注。但其整体效率仍无法达到令人满意的程度。人工光合作用在二氧化碳转化方面表现出更高的效率。然而,目前人工光合作用通常只能产生 C1-C3 有机物质。一些研究表明,异养微藻可以利用乙酸盐等简单有机物高效合成高附加值的有机物质。因此,人工光合作用与异养微藻培养的结合在高效碳捕获和高附加值有机物质生产方面显示出巨大的潜力。本文系统分析了微藻和人工光合作用二氧化碳转化的特点和挑战。在此基础上,讨论了人工光合作用与微藻培养相结合的耦合方式和发展趋势。总之,人工光合作用与微藻培养的结合在碳捕获和利用领域具有巨大的潜力,值得进一步研究。