Department of Bioprocess Engineering and Biotechnology, Federal University of Paraná, Centro Politécnico, CP 19011, Curitiba, PR, 81531-908, Brazil.
Department of Bioprocess Engineering and Biotechnology, Federal University of Paraná, Centro Politécnico, CP 19011, Curitiba, PR, 81531-908, Brazil.
J Environ Manage. 2024 Jul;363:121329. doi: 10.1016/j.jenvman.2024.121329. Epub 2024 Jun 8.
Microalgae-mediated industrial flue gas biofixation has been widely discussed as a clean alternative for greenhouse gas mitigation. Through photosynthetic processes, microalgae can fix carbon dioxide (CO) and other compounds and can also be exploited to obtain high value-added products in a circular economy. One of the major limitations of this bioprocess is the high concentrations of CO, sulfur oxides (SOx), and nitrogen oxides (NOx) in flue gases, according to the origin of the fuel, that can inhibit photosynthesis and reduce the process efficiency. To overcome these limitations, researchers have recently developed new technologies and enhanced process configurations, thereby increased productivity and CO removal rates. Overall, CO biofixation rates from flue gases by microalgae ranged from 72 mg L d to over 435 mg L d, which were directly influenced by different factors, mainly the microalgae species and photobioreactor. Additionally, mixotrophic culture have shown potential in improving microalgae productivity. Progress in developing new reactor configurations, with pilot-scale implementations was observed, resulting in an increase in patents related to the subject and in the implementation of companies using combustion gases in microalgae culture. Advancements in microalgae-based green technologies for environmental impact mitigation have led to more efficient biotechnological processes and opened large-scale possibilities.
微藻介导的工业烟道气生物固定已被广泛讨论为一种清洁的温室气体减排替代方案。通过光合作用,微藻可以固定二氧化碳(CO)和其他化合物,并且还可以在循环经济中利用来获得高附加值的产品。根据燃料的来源,该生物过程的主要限制之一是烟道气中高浓度的二氧化碳、硫氧化物(SOx)和氮氧化物(NOx),这些物质会抑制光合作用并降低过程效率。为了克服这些限制,研究人员最近开发了新技术和增强的工艺配置,从而提高了生产力和 CO 去除率。总的来说,微藻从烟道气中进行 CO 固定的速率范围从 72 mg L d 到超过 435 mg L d,这直接受到不同因素的影响,主要是微藻物种和光生物反应器。此外,混合营养培养在提高微藻生产力方面显示出潜力。观察到在开发新的反应器配置方面取得了进展,并进行了中试实施,导致与该主题相关的专利数量增加,并实施了利用燃烧气体进行微藻培养的公司。基于微藻的绿色技术在减轻环境影响方面的进展导致了更高效的生物技术过程,并开辟了大规模的可能性。