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From photons to biomass and biofuels: Evaluation of different strategies for the improvement of algal biotechnology based on comparative energy balances

机译:从光子到生物质和生物燃料:基于比较的能量平衡评估改善藻类生物技术的不同策略

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Microalgal based biofuels are discussed as future sustainable energy source because of their higher photosynthetic and water use efficiency to produce biomass. In the context of climate CO_2 mitigation strategies, algal mass production is discussed as a potential CO_2 sequestration technology which uses CO_2 emissions to produce biomass with high-oil content independent on arable land. In this short review, it is presented how complete energy balances from photon to harvestable biomass can help to identify the limiting processes on the cellular level. The results show that high productivity is always correlated with high metabolic costs. The overall efficiency of biomass formation can be improved by a photobioreactor design which is kinetically adapted to the rate-limiting steps in cell physiology. However, taking into account the real photon demand per assimilated carbon and the energy input for biorefinement, it becomes obvious that alternative strategies must be developed to reach the goal of a real CO_2 sequestration.
机译:基于微藻的生物燃料由于其更高的光合作用和水利用效率来生产生物质而被讨论为未来的可持续能源。在气候减缓CO_2的策略中,藻类的大量生产被认为是一种潜在的CO_2隔离技术,该技术利用CO_2的排放来生产高油含量的生物质,而这与耕地无关。在这篇简短的综述中,将介绍从光子到可收获生物质的完整能量平衡如何帮助确定细胞水平上的限制性过程。结果表明,高生产率总是与高代谢成本相关。可以通过光生物反应器设计提高生物量形成的总体效率,该设计在动力学上适合于细胞生理学中的限速步骤。但是,考虑到每个同化碳的实际光子需求和用于生物精制的能量输入,很明显,必须开发替代策略才能实现实际CO_2隔离的目标。

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