Laboratory of Applied Biology, Dr Küppers Biotechnology Unit, St Aloysius College, Mangalore, Karnataka, India.
Dept. of Electrical and Electronics Engineering, NITK, Surathkal, Karnataka, India.
J Photochem Photobiol B. 2017 May;170:235-240. doi: 10.1016/j.jphotobiol.2017.04.023. Epub 2017 Apr 20.
Microalgae are an alternative source for renewable energy to overcome the energy crises caused by exhaustion of fuel reserves. Algal biofuel technology demands a cost effective strategy for net profitable productivity. Inconsistent illumination intensities hinder microalgal growth. The light-utilizing efficiency of the cells is critical. Light scarcity leads to low production and high intensities cause photo-inhibition. We report effective usage of LEDs of different band wavelengths on the growth of microalgae in a closed, controlled environment to generate biomass and lipid yields. Among the different intensity and wavelengths tested. The light intensities of 500lx of blue-red combination gave maximum biomass in terms of cell density. LED of red light 220lx wavelength doubled the lipid dry weight from 30% (w/w) in white light to 60% (w/w). Thin layer lipid chromatogram demonstrated a dense and prominent spot of triacylglycerols in the red light, 220lx grown cultures. The FTIR profile indicates that different wavelength exposure did not alter the functional groups or change the chemical composition of the extracted lipids ensuring the quality of the product. We reiterate the fact that combination of red and blue LEDs is favoured over white light illumination for generation of biomass. In addition, we report an exciting finding of exposure to LEDs of red wavelength post-biomass generation lead to enhanced lipid production. This simple process doubled the lipid content harvested in 20days culture period.
微藻是可再生能源的替代来源,可以克服燃料储备枯竭带来的能源危机。藻类生物燃料技术需要一种具有成本效益的策略,以实现盈利。光照强度不一致会阻碍微藻的生长。细胞的光利用效率至关重要。光缺乏会导致产量低,而高强度会导致光抑制。我们报告了在封闭、可控的环境中使用不同波段波长的 LED 有效促进微藻生长,以产生生物量和脂质产量。在测试的不同强度和波长中,蓝-红组合的 500lx 光强度在细胞密度方面产生了最大的生物量。220lx 的红光 LED 将脂质干重从白光下的 30%(w/w)增加到 60%(w/w),增加了一倍。薄层脂质色谱显示,在 220lx 生长的培养物中,红光中三酰基甘油的密度和突出斑点。FTIR 图谱表明,不同波长的暴露不会改变功能基团或改变提取脂质的化学成分,从而确保产品的质量。我们重申了这样一个事实,即与白光照明相比,红蓝 LED 的组合更有利于生物量的产生。此外,我们还报告了一个令人兴奋的发现,即在生物量产生后暴露于红 LED 波长下会导致脂质产量增加。这个简单的过程使 20 天培养期内收获的脂质含量增加了一倍。