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Direct Methane Removal from Air by Aerobic Methanotrophs.

机构信息

Department of Chemical Engineering, Department of Microbiology, University of Washington, Seattle, Washington 98195, USA

出版信息

Cold Spring Harb Perspect Biol. 2024 Jul 1;16(7):a041671. doi: 10.1101/cshperspect.a041671.

Abstract

The rapid pace of climate change has created great urgency for short-term mitigation strategies. Appropriately, the long-term target for intervening in global warming is CO, but experts suggest that methane should be a key short-term target. Methane has a warming impact 34 times greater than CO on a 100-year timescale, and 86 times greater on a 20-year timescale, and its short half-life in the atmosphere provides the opportunity for near-term positive climate impacts. One approach to removing methane is the use of bacteria for which methane is their sole carbon and energy source (methanotrophs). Such bacteria convert methane to CO and biomass, a potentially value-added product and co-benefit. If air above emissions sites with elevated methane is targeted, technology harnessing the aerobic methanotrophs has the potential to become economically viable and environmentally sound. This article discusses challenges and opportunities for using aerobic methanotrophs for methane removal from air, including the avoidance of increased NO emissions.

摘要

气候变化的步伐如此之快,使得短期缓解策略变得尤为紧迫。因此,干预全球变暖的长期目标是二氧化碳,但专家建议甲烷应该是短期的关键目标。甲烷在 100 年的时间尺度上对全球变暖的影响是二氧化碳的 34 倍,在 20 年的时间尺度上的影响是二氧化碳的 86 倍,其在大气中的半衰期较短,为近期的积极气候影响提供了机会。一种去除甲烷的方法是利用甲烷是其唯一碳源和能源的细菌(甲烷营养菌)。这些细菌将甲烷转化为二氧化碳和生物质,这是一种潜在的增值产品和共同效益。如果针对排放点上方甲烷含量升高的空气进行靶向处理,那么利用好氧甲烷营养菌的技术就有可能变得具有经济可行性和环境可持续性。本文讨论了利用好氧甲烷营养菌从空气中去除甲烷的挑战和机遇,包括避免增加一氧化氮排放。

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Direct Methane Removal from Air by Aerobic Methanotrophs.好的,我已经了解任务,请输入需要翻译的文本。
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