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A Novel System for Real-Time In Situ Monitoring of CO2 Sequestration in Photoautotrophic Biofilms

机译:一种实时新型系统原位监测Phopautotrophic Biofilms中的CO2封存

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摘要

Climate change brought about by anthropogenic CO emissions has created a critical need for effective CO management solutions. Microalgae are well suited to contribute to efforts aimed at addressing this challenge, given their ability to rapidly sequester CO coupled with the commercial value of their biomass. Recently, microalgal biofilms have garnered significant attention over the more conventional suspended algal growth systems, since they allow for easier and cheaper biomass harvesting, among other key benefits. However, the path to cost-effectiveness and scaling up is hindered by a need for new tools and methodologies which can help evaluate, and in turn optimize, algal biofilm growth. Presented here is a novel system which facilitates the real-time in situ monitoring of algal biofilm CO sequestration. Utilizing a CO -permeable membrane and a tube-within-a-tube design, the CO sequestration monitoring system (CSMS) was able to reliably detect slight changes in algal biofilm CO uptake brought about by light–dark cycling, light intensity shifts, and varying amounts of phototrophic biomass. This work presents an approach to advance our understanding of carbon flux in algal biofilms, and a base for potentially useful innovations to optimize, and eventually realize, algae biofilm-based CO sequestration.
机译:由人类学CO排放带来的气候变化创造了对有效CO管理解决方案的关键需求。微藻非常适合为旨在解决这一挑战的努力,鉴于他们能够快速螯合与其生物质的商业价值的能力。最近,微藻生物膜在更常规的悬浮藻类生长系统上获得了重大关注,因为它们允许更容易和更便宜的生物测量,以及其他主要益处。然而,通过需要有助于评估和依次优化的新工具和方法,阻碍了成本效益和缩放的途径受阻,并且又可以优化藻类生物膜生长。此处提出了一种新颖的系统,促进了藻类生物膜Co封存的实时监测。利用共同膜和管内设计,共同封存监测系统(CSMS)能够可靠地检测通过光暗循环,光强度换档的藻类生物膜CO吸收的轻微变化不同量的光营养生物质。这项工作提出了一种方法来推进我们对藻类生物膜中的碳通量的理解,以及潜在的有用创新,以优化,最终实现藻类生物膜的共同封存。

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