风化作用
二氧化碳
环境化学
环境科学
固碳
生物炭
硅酸盐
海洋酸化
土壤水分
地球大气中的二氧化碳
碳纤维
碳酸盐
中观
碳循环
无机碳总量
化学
农学
气候变化
营养物
土壤科学
生态学
地质学
生态系统
海洋学
地球化学
材料科学
生物
有机化学
热解
复合数
复合材料
作者
Tania Timmermann,Christopher M. Yip,Yun‐Ya Yang,Kimberly A. Wemmer,Anupam Chowdhury,Daniel Dores,Taichi Takayama,Sharon Nademanee,Bjørn A. Traag,Kazem Zamanian,Bernardo González,Daniel O. Breecker,Noah Fierer,Eric Slessarev,Gonzalo Fuenzalida-Meriz
摘要
ABSTRACT Anthropogenic carbon emissions contribute significantly to the greenhouse effect, resulting in global warming and climate change. Thus, addressing this critical issue requires innovative and comprehensive solutions. Silicate weathering moderates atmospheric CO 2 levels over geological time, but it occurs too slowly to counteract anthropogenic emissions effectively. Here, we show that the microorganism Bacillus subtilis strain MP1 promotes silicate weathering across different experimental setups with various levels of complexity. First, we found that MP1 was able to form a robust biofilm in the presence of feldspar and significantly increased ( p < 0.05) silicate dissolution rates, pH, and calcium carbonate formation in culture experiments. Second, in mesocosm experiments, we found that MP1 enhanced the silicate weathering rate in soil by more than six times compared to the untreated control. In addition, soil inorganic carbon increased by 20%, and the concentrations of ions, including calcium, magnesium, and iron, were also elevated under the MP1 treatment. More importantly, when applied as a seed treatment on eight soybean fields, we found that MP1 significantly ( p < 0.05) boosted soil inorganic carbon, leading to a gross accrual of 2.02 tonnes of inorganic carbon per hectare annually. Our findings highlight the potential of enhancing native silicate weathering with microorganisms in agricultural fields to increase soil inorganic carbon, contributing to climate change mitigation.
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