阴极催化剂辅助微生物从二氧化碳中电合成乙酸:有前途的材料选择

IF 6.3 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Rujing Lin , Xiaomei Zheng , Huai Zhang , Yingying He , Mingxian Liu , Li Xie
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引用次数: 0

摘要

敏感金属作为正极材料的核心,在微生物电化学系统(MES)中二氧化碳制乙酸工艺的优化中起着重要的作用。在这项工作中,铁(Fe),铜(Cu)和镍(Ni)作为敏感金属正极材料在MES中进行了CO2转化的评估。以fe电极为电极材料的MES具有较好的CO2还原性能,其最大乙酸积累量为417.9±39.2 mg/L,分别是ni电极组和cu电极组的1.5倍和1.7倍。此外,铁电极组的电子回收率为67.7%。通过电化学行为和胞外高分子物质对电极悬浮污泥之间的电子传递进行了系统的交叉评价。fe电极组的电子传递速率最高,为0.194 s-1 (kapp),分别是Cu电极组和ni电极组的17.6倍和21.5倍。铁电极有利于降低电极与悬浮污泥之间的电化学阻抗。此外,铁电极组的胞外聚合物中的氧化还原物质增加,意味着更有利的电子传递动力学。同时,功能菌Acetoanerobium的富集和fe电极基团羰基途径关键酶的增加也促进了MES中CO2的转化。本研究为MES中CO2增值过程中有前景的敏感金属电极材料的评价提供了一个视角,并为后续电极修饰提供了参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cathode catalyst-assisted microbial electrosynthesis of acetate from carbon dioxide: promising material selection

Cathode catalyst-assisted microbial electrosynthesis of acetate from carbon dioxide: promising material selection
As the core of cathode materials, sensitive metals play important roles in the optimization of acetate production from carbon dioxide (CO2) in microbial electrochemical system (MES). In this work, iron (Fe), copper (Cu), and nickel (Ni) as sensitive metal cathode materials were evaluated for CO2 conversion in MES. The MES with Fe-electrode as a promising electrode material demonstrated a superior CO2 reduction performance with a maximum acetate accumulation of 417.9 ± 39.2 mg/L, which was 1.5 and 1.7 folds higher than that in the Ni-electrode and Cu-electrode groups, respectively. Furthermore, an outstanding electron recovery efficiency of 67.7 % was shown in the Fe-electrode group. The electron transfer between electrode-suspended sludge was systematically cross-evaluated by the electrochemical behavior and extracellular polymeric substances. The Fe-electrode group had the highest electron transfer rate with 0.194 s-1 (kapp), which was 17.6 and 21.5 times higher than that of the Cu- and Ni-electrode groups, respectively. Fe-electrode was beneficial for reducing electrochemical impedance between the electrode and suspended sludge. Additionally, redox substances in extracellular polymeric substances of the Fe-electrode group were increased, implying more favorable electron transport dynamics. Simultaneously, enrichments of functional bacteria Acetoanerobium and increased key enzymes involved in the carbonyl pathway of the Fe-electrode group were observed, which also promoted CO2 conversion in MES. This study provides a perspective on evaluating the promising sensitive metal electrode material for the process of CO2 valorization in MES and offers a reference for the subsequent electrode modification.
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来源期刊
Journal of Environmental Sciences-china
Journal of Environmental Sciences-china 环境科学-环境科学
CiteScore
13.70
自引率
0.00%
发文量
6354
审稿时长
2.6 months
期刊介绍: The Journal of Environmental Sciences is an international journal started in 1989. The journal is devoted to publish original, peer-reviewed research papers on main aspects of environmental sciences, such as environmental chemistry, environmental biology, ecology, geosciences and environmental physics. Appropriate subjects include basic and applied research on atmospheric, terrestrial and aquatic environments, pollution control and abatement technology, conservation of natural resources, environmental health and toxicology. Announcements of international environmental science meetings and other recent information are also included.
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