Sayago Uriel Fernando Carreño
Facultad de Ingenieria, Fundacion Universitaria los Libertadores, 111221 Bogotá, Colombia.
Polymers (Basel). 2024 Mar 25;16(7):893. doi: 10.3390/polym16070893.
Water scarcity is a significant global issue caused by the prolonged disregard and unsustainable management of this essential resource by both public and private bodies. The dependence on fossil fuels further exacerbates society's bleak environmental conditions. Therefore, it is crucial to explore alternative solutions to preserve our nation's water resources properly and promote the production of biofuels. Research into the utilization of to remove heavy metals and generate biofuels is extensive. The combination of these two lines of inquiry presents an excellent opportunity to achieve sustainable development goals. This study aims to develop a sustainable wastewater treatment system and generate biohydrogen from dry, pulverized biomass. A treatment system was implemented to treat 1 L of industrial waste. The interconnected compartment system was built by utilizing recycled PET bottles to generate biohydrogen by reusing the feedstock for the treatment process. The production of biological hydrogen through dark fermentation, using biomass containing heavy metals as a biohydrogen source, was studied. Cr (VI) and Pb (II) levels had a low impact on hydrogen production. The uncontaminated biomass of displayed a significantly higher hydrogen yield (81.7 mL H/g glucose). The presence of Cr (IV) in leads to a decrease in biohydrogen yield by 14%, and the presence of Pb (II) in leads to a decrease in biohydrogen yield of 26%. This work proposes a strategy that utilizes green technologies to recover and utilize contaminated water. Additionally, it enables the production of bioenergy with high efficiency, indirectly reducing greenhouse gases. This strategy aligns with international programs for the development of a circular economy.
水资源短缺是一个重大的全球性问题,这是由于公共和私人机构长期忽视并以不可持续的方式管理这一重要资源所致。对化石燃料的依赖进一步加剧了社会严峻的环境状况。因此,探索替代解决方案以妥善保护我国水资源并促进生物燃料生产至关重要。关于利用[具体物质]去除重金属并生产生物燃料的研究十分广泛。这两条研究路线的结合为实现可持续发展目标提供了绝佳机遇。本研究旨在开发一种可持续的废水处理系统,并从干燥、粉碎的[生物质名称]生物质中产生生物氢。实施了一个处理系统来处理1升工业废水。利用回收的PET瓶构建了相互连接的隔室系统,通过在处理过程中重新利用原料来产生生物氢。研究了利用含重金属的生物质作为生物氢源通过暗发酵生产生物氢的情况。Cr(VI)和Pb(II)水平对产氢的影响较小。未受污染的[生物质名称]生物质显示出显著更高的氢产量(81.7毫升氢气/克葡萄糖)。[生物质名称]中Cr(IV)的存在导致生物氢产量下降14%,Pb(II)的存在导致生物氢产量下降26%。这项工作提出了一种利用绿色技术回收和利用受污染水的策略。此外,它能够高效生产生物能源,间接减少温室气体排放。该策略与国际循环经济发展计划相一致。