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微生物介导的砷还原和氧化铁吸附/解吸的偶联动力学模型:微生物诱导的砷解吸的作用。

Coupled Kinetics Model for Microbially Mediated Arsenic Reduction and Adsorption/Desorption on Iron Oxides: Role of Arsenic Desorption Induced by Microbes.

机构信息

School of Environment and Energy , South China University of Technology , Guangzhou , Guangdong 510006 , People's Republic of China.

The Key Lab of Pollution Control and Ecosystem Restoration in Industry Clusters, Ministry of Education , South China University of Technology , Guangzhou , Guangdong 510006 , People's Republic of China.

出版信息

Environ Sci Technol. 2019 Aug 6;53(15):8892-8902. doi: 10.1021/acs.est.9b00109. Epub 2019 Jun 27.

Abstract

The dynamic behavior of arsenic (As) species is closely associated with iron mineral dissolution/transformation in the environment. Bacterially induced As(V) desorption from iron oxides may be another important process that facilitates As(V) release from iron oxides without significant reductive dissolution of iron oxides. Under the impact of bacterially induced desorption, As kinetic behavior is controlled by both the microbial reduction of As(V) and the As(III)&As(V) reactions on iron oxide surfaces. However, there is still a lack of quantitative understanding on the coupled kinetics of these processes in complex systems. We developed a quantitative model that integrated the time-dependent microbial reduction of As(V) with nonlinear As(III)&As(V) adsorption/desorption kinetics on iron oxides under the impact of bacterially induced As(V) desorption. We collected and modeled literature data from 11 representative studies, in which microbial reduction reactions occurred with minimal iron oxide dissolution/transformation. Our model highlighted the significance of microbially induced As(V) desorption and time-dependent changes of microbial reduction rates. The model can quantitatively assess the roles and the coupling of individual reactions in controlling the overall reaction rates. It provided a basis for developing comprehensive models for As cycling in the environment by coupling with other chemical, physical, and microbial processes.

摘要

砷(As)形态的动态行为与环境中铁矿物的溶解/转化密切相关。细菌诱导的 As(V)从铁氧化物上的解吸可能是促进 As(V)从铁氧化物中释放的另一个重要过程,而不会导致铁氧化物的显著还原溶解。在细菌诱导解吸的影响下,As 的动力学行为受微生物还原 As(V)和铁氧化物表面上的 As(III)和 As(V)反应的共同控制。然而,在复杂体系中,这些过程的耦合动力学仍然缺乏定量理解。我们开发了一个定量模型,该模型将微生物还原 As(V)的时变与细菌诱导的 As(V)解吸作用下铁氧化物上非线性 As(III)和 As(V)吸附/解吸动力学相结合。我们收集并模拟了来自 11 项具有代表性研究的文献数据,其中微生物还原反应在铁氧化物的溶解/转化最小的情况下发生。我们的模型强调了细菌诱导的 As(V)解吸和微生物还原速率的时变变化的重要性。该模型可以定量评估单个反应在控制整体反应速率中的作用和耦合。它通过与其他化学、物理和微生物过程相结合,为环境中 As 循环的综合模型的开发提供了基础。

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