Sustainable CO2 bio-mitigation: a life cycle perspective on chemolithotrophic conversion in bubble column bioreactors

IF 4.1 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Rachael J. Barla, Suresh Gupta and Smita Raghuvanshi
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Abstract

The urgent need for low-carbon energy alternatives has intensified interest in sustainable biofuel production pathways. This study presents a comprehensive Life Cycle Assessment (LCA) of a chemolithotrophic bacterial platform for simultaneous CO2 mitigation and biodiesel production using Bacillus cereus SSLMC2 cultivated in 10 and 20 L bubble column bioreactors. Unlike phototrophic systems, this process leverages light-independent bacterial metabolism, offering year-round operation, high biomass yield, and compatibility with flue gas as a carbon source. Experimental data were integrated with LCA modeling using Umberto NXT Universal software and the ReCiPe 2016 and CML baseline methods to quantify environmental impacts across cultivation, biomass harvesting, lipid extraction, and transesterification stages. The results identify dewatering and homogenization as major environmental hotspots, contributing significantly to climate change, fossil depletion, and human toxicity categories. Endpoint analysis revealed human health and resource availability as the most impacted areas, primarily due to electricity use and chemical inputs. Cumulative energy demand assessments confirmed that scale-up from 10 to 20 L does not proportionally increase energy use, suggesting promising scalability. Recommendations include replacing centrifugation with membrane-based dewatering, solvent recovery systems, integration of renewable energy, and recycling of CO2 and water. This is the first LCA study to evaluate chemolithotrophic CO2 bio-mitigation coupled with biodiesel production at pilot scale using empirical data. The findings provide critical insights for optimizing microbial biorefineries and support the development of scalable, environmentally efficient carbon capture and utilization technologies.

Abstract Image

可持续的CO2生物减缓:气泡塔生物反应器中化学岩石营养转化的生命周期视角
对低碳能源替代品的迫切需求增强了人们对可持续生物燃料生产途径的兴趣。本研究利用蜡样芽孢杆菌(Bacillus cereus SSLMC2)在10和20 L泡柱生物反应器中培养,对一种能同时缓解二氧化碳排放和生产生物柴油的化化岩石营养细菌平台进行了全面的生命周期评估(LCA)。与光养系统不同,该过程利用不依赖光的细菌代谢,提供全年运行,高生物量产量,并与作为碳源的烟气兼容。利用Umberto NXT Universal软件、ReCiPe 2016和CML基线方法,将实验数据与LCA建模相结合,量化种植、生物质收获、脂质提取和酯交换阶段的环境影响。结果表明,脱水和均质化是主要的环境热点,对气候变化、化石消耗和人类毒性类别有重要贡献。终点分析显示,人类健康和资源供应是受影响最大的领域,主要是由于电力使用和化学品投入。累积能源需求评估证实,从10升到20升并不会按比例增加能源使用,这表明有前景的可扩展性。建议包括用膜脱水、溶剂回收系统、可再生能源的整合以及二氧化碳和水的循环利用取代离心。这是第一个利用经验数据在中试规模上评估化学营养化二氧化碳生物减排与生物柴油生产相结合的LCA研究。这些发现为优化微生物生物精炼厂提供了重要见解,并支持开发可扩展的、环保的碳捕获和利用技术。
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来源期刊
Sustainable Energy & Fuels
Sustainable Energy & Fuels Energy-Energy Engineering and Power Technology
CiteScore
10.00
自引率
3.60%
发文量
394
期刊介绍: Sustainable Energy & Fuels will publish research that contributes to the development of sustainable energy technologies with a particular emphasis on new and next-generation technologies.
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