Lacroux Julien, Llamas Mercedes, Dauptain Kevin, Avila Romina, Steyer Jean-Philippe, van Lis Robert, Trably Eric
LBE, Univ Montpellier, INRAE, 102 avenue des Etangs, F-11100 Narbonne, France.
LBE, Univ Montpellier, INRAE, 102 avenue des Etangs, F-11100 Narbonne, France; Instituto de la Grasa (C.S.I.C.), Campus Universidad Pablo de Olavide, Edificio 46., Ctra. de Utrera km. 1, 41013 Sevilla, Spain.
Sci Total Environ. 2023 Mar 20;865:161136. doi: 10.1016/j.scitotenv.2022.161136. Epub 2022 Dec 29.
The implementation of a sustainable bio-based economy is considered a top priority today. There is no doubt about the necessity to produce renewable bioenergy and bio-sourced chemicals to replace fossil-derived compounds. Under this scenario, strong efforts have been devoted to efficiently use organic waste as feedstock for biohydrogen production via dark fermentation. However, the technoeconomic viability of this process needs to be enhanced by the valorization of the residual streams generated. The use of dark fermentation effluents as low-cost carbon source for microalgae cultivation arises as an innovative approach for bioproducts generation (e.g., biodiesel, bioactive compounds, pigments) that maximizes the carbon recovery. In a biorefinery context, after value-added product extraction, the spent microalgae biomass can be further valorised as feedstock for biohydrogen production. This integrated process would play a key role in the transition towards a circular economy. This review covers recent advances in microalgal cultivation on dark fermentation effluents (DFE). BioH via dark fermentation processes and the involved metabolic pathways are detailed with a special focus on the main aspects affecting the effluent composition. Interesting traits of microalgae and current approaches to solve the challenges associated to the integration of dark fermentation and microalgae cultivation are also discussed.
如今,实施可持续的生物基经济被视为重中之重。毫无疑问,生产可再生生物能源和生物基化学品以替代化石衍生化合物是必要的。在这种情况下,人们已做出巨大努力,致力于通过暗发酵将有机废物高效用作生物制氢的原料。然而,该过程的技术经济可行性需要通过对产生的残余物流进行增值利用来提高。将暗发酵废水用作微藻培养的低成本碳源,作为一种生产生物产品(如生物柴油、生物活性化合物、色素)的创新方法应运而生,这种方法能最大限度地提高碳回收率。在生物炼制的背景下,提取增值产品后,剩余的微藻生物质可进一步用作生物制氢的原料。这一综合过程将在向循环经济的转型中发挥关键作用。本综述涵盖了利用暗发酵废水(DFE)培养微藻的最新进展。详细介绍了通过暗发酵过程产生生物氢及其相关代谢途径,特别关注影响废水成分的主要方面。还讨论了微藻的有趣特性以及当前解决与暗发酵和微藻培养整合相关挑战的方法。