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Role of Light Intensity and Temperature in the Regulation of Hydrogen Photoproduction by the Marine Cyanobacterium Oscillatoria sp. Strain Miami BG7

机译:光强度和温度在海洋蓝藻Oscillatoria sp。调节氢光生产中的作用。应变迈阿密BG7

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The effects of several key environmental factors on the development and control of hydrogen production in the marine blue-green alga (cyanobacterium) Oscillatoria sp. strain Miami BG7 were studied in relation to the potential application of this strain to a bio-solar energy technology. The production of cellular biomass capable of evolving hydrogen gas was strongly affected by light intensity, temperature, and the input of ammonia as a nutrient. Depletion of combined nitrogen from the growth media was a prerequisite for the initiation of hydrogen production. Maximum hydrogen-producing capability coincided with the end of the linear phase of growth. Hydrogen production exhibited considerable flexibility to environmental extremes. The rate of production saturated at low light intensities (i.e., 15 to 30 μEinsteins/m2 per s), and no photoinhibition was observed at high light intensity (i.e., 1,000 μEinsteins/m2 per s). The upper temperature limit for production was 46°C. Above the light compensation point for O2 evolution H2 production was inhibited. However, this problem was alleviated by two related phenomena. (i) The capacity of cells to evolve oxygen deteriorated with increasing culture age and nitrogen depletion, and (ii) the ability of these cells to produce oxygen in closed anaerobic hydrogen production systems was temporally limited.
机译:几个关键环境因素对海洋蓝绿藻(蓝藻)Oscillatoria sp。产氢的发展和控制的影响。研究了该菌株迈阿密BG7与该菌株在生物太阳能技术中的潜在应用。能够释放出氢气的细胞生物质的生产受到光强度,温度和氨作为营养素的输入的强烈影响。从生长培养基中耗尽合并的氮是引发氢产生的先决条件。最大的制氢能力与线性增长阶段的结束相吻合。制氢对极端环境表现出相当大的灵活性。在低光照强度下(即15至30μEinsteins/ m2 / s)达到饱和的生产率,在高光照强度下(即1,000μEinsteins/ m2 / s)没有观察到光抑制作用。生产的最高温度为46℃。在O2逸出的光补偿点以上,抑制了H2的产生。但是,两个相关现象缓解了这个问题。 (i)随着培养年龄和氮耗竭的增加,细胞释放氧气的能力恶化;(ii)这些细胞在封闭的厌氧制氢系统中产生氧气的能力在时间上受到限制。

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