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Influence of laser photoactivated graphitic carbon nitride nanosheets and nickel nanoparticles on purple non-sulfur bacteria for biohydrogen production from biomass

机译:激光光活化的石墨氮化碳氮化物和镍纳米粒子对生物质生物量紫色非硫菌的影响

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The objective of this study is to increase biohydrogen production from biomass using laser photoactivated nanomaterials. Light saturation of photo-fermentation is a vital factor that influences fermentation effectiveness and hydrogen yield. In this study, it is hypothesized that the bio-stimulation of hydrogen-producing purple non-sulfur (PNS) bacteria using laser photoactivated nanomaterials can enhance the endurance ability of such bacteria to unsteady light irradiation, where this leads to overcome the challenge of light saturation. Furthermore, the addition of nanomaterials leads to bio-stimulate the bacterial cells and enhance their activity and growth rate and, therefore, increase biohydrogen production from biomass. A biohydrogen production system and a model of photobioreactor were manufactured and installed. Food wastes were collected from kitchen leftovers of different fast-food suppliers and were used in this study as feedstocks for biohydrogen production. The production process was conducted as following: exposing 16.5 mg/l of graphitic carbon nitride nanosheets on the one hand and 50 mg/l of nickel nanoparticles on the other hand to a helium-neon green laser radiation source with a wavelength of 543 nm for 1 h, then adding them to the bacterial inoculum and then mixing them with biomass and water by a ratio of 0.5:1:2 which were then kept in the photobioreactor exposed to white light emitting diodes (LEDs) with a luminous flux of 3600 lumen and at 30 degrees C for 26 days with mixing for 5 min every 30 min to produce biohydrogen. By this method, it is possible to improve the bioenvironmental conditions and the bio-responses of bacteria which results in increasing the biohydrogen yield by 287% over the conventional method. (C) 2021 Elsevier Ltd. All rights reserved.
机译:本研究的目的是使用激光光活化的纳米材料从生物量增加生物氢生产。光发酵的光饱和度是影响发酵效果和氢屈服的重要因素。在这项研究中,假设使用激光产生激活的诸如使用激光激活的纳米材料的产生氢的紫色非硫(PNS)细菌的生物刺激可以增强这种细菌对不稳定光照的耐久性,这导致克服光的挑战饱和。此外,添加纳米材料导致生物刺激细菌细胞,增强它们的活性和生长速率,因此增加生物质的生物氢生产。制造并安装了生物氢生产系统和光生物反应器模型。从不同快餐供应商的厨房剩菜收集食物废物,并在本研究中使用作为生物氢生产的原料。如下所示的生产过程:另一方面,将16.5mg / L的石墨碳氮化物纳米片曝光至50mg / L的镍纳米颗粒,以波长为543nm的氦 - 氖绿色激光辐射源1小时,然后将它们加入细菌接种物中,然后将它们与生物质和水混合,比例为0.5:1:2,然后将其保持在暴露于白色发光二极管(LED)的光生物反应器中,具有3600腔的光通量在30摄氏度下26天,每30分钟混合5分钟以产生生物氢。通过这种方法,可以改善生物环境条件和细菌的生物响应,这导致通过常规方法将生物氢产率提高287%。 (c)2021 elestvier有限公司保留所有权利。

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