Conductive Materials on Biocathodes Altered the Electron-Transfer Paths and Modulated γ-HCH Dechlorination and CH4 Production in Microbial Electrochemical Systems

被引:23
作者
Cheng, Jie [1 ]
Liu, Meng [1 ]
Su, Xin [1 ]
Rittmann, Bruce E. [1 ,2 ]
Lu, Zhijiang [3 ]
Xu, Jianming [1 ]
He, Yan [1 ,4 ,5 ]
机构
[1] Zhejiang Univ, Inst Soil & Water Resources & Environm Sci, Coll Environm & Resource Sci, Zhejiang Prov Key Lab Agr Resources & Environm, Hangzhou 310058, Peoples R China
[2] Arizona State Univ, Biodesign Swette Ctr Environm Biotechnol, Tempe, AZ 85287 USA
[3] Wayne State Univ, Dept Environm Sci & Geol, Detroit, MI 48201 USA
[4] Minist Educ, Key Lab Environm Remediat & Ecol Hlth, Hangzhou 310058, Peoples R China
[5] 886 Yuhangtang Rd, Hangzhou 310058, Peoples R China
基金
中国国家自然科学基金;
关键词
gamma; -hexachlorocyclohexane; methane; magnetite nanoparticles; biochar; electro-bioreduction; BIOELECTROCHEMICAL SYSTEMS; REDUCTIVE DECHLORINATION; REMOVAL; BIOCHAR; METHANE;
D O I
10.1021/acs.est.2c06097
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Adding conductive materials to the cathode of a microbial electrochemical system (MES) can alter the route of interspecies electron transfer and the kinetics of reduction reactions. We tested reductive dechlorination of gamma-hexachlorocyclohexane (gamma-HCH), along with CH4 production, in MES systems whose cathodes were coated with conductive magnetite nanoparticles (NaFe), biochar (BC), magnetic biochar (FeBC), or anti-conductive silica biochar (SiBC). Coating with NaFe enriched electroactive microorganisms, boosted electro-bioreduction, and accelerated gamma-HCH dechlorination and CH4 production. In contrast, BC only accelerated dechlorination, while FeBC only accelerated methanogenesis, because of their assemblies of functional taxa that selectively transferred electrons to those electron sinks. SiBC, which decreased electro-bioreduction, yielded the highest CH4 production and increased methanogens and the mcrA gene. This study provides a strategy to selectively control the distribution of electrons between reductive dechlorination and methanogenesis by adding conductive or anti-conductive materials to the MES's cathode. If the goal is to maximize dechlorination and minimize methane generation, then BC is the optimal conductive material. If the goal is to accelerate electro-bioreduction, then the best addition is NaFe. If the goal is to increase the rate of methanogenesis, adding anti-conductive SiBC is the best.
引用
收藏
页码:2739 / 2748
页数:10
相关论文
共 49 条
[11]   Promoted reductive removal of chlorinated organic pollutants co-occurring with facilitated methanogenesis in anaerobic environment: A systematic review and meta-analysis [J].
Cheng, Jie ;
Yuan, Jing ;
Li, Shuyao ;
Yang, Xueling ;
Lu, Zhijiang ;
Xu, Jianming ;
He, Yan .
CRITICAL REVIEWS IN ENVIRONMENTAL SCIENCE AND TECHNOLOGY, 2022, 52 (14) :2582-2609
[12]   Nitrate supply and sulfate-reducing suppression facilitate the removal of pentachlorophenol in a flooded mangrove soil [J].
Cheng, Jie ;
Xue, Lili ;
Zhu, Min ;
Feng, Jiayin ;
Shen-Tu, Jue ;
Xu, Jianming ;
Brookes, Philip C. ;
Tang, Caixian ;
He, Yan .
ENVIRONMENTAL POLLUTION, 2019, 244 :792-800
[13]   Coherent dynamics and association networks among lake bacterioplankton taxa [J].
Eiler, Alexander ;
Heinrich, Friederike ;
Bertilsson, Stefan .
ISME JOURNAL, 2012, 6 (02) :330-342
[14]   Bioelectrochemical Analyses of the Development of a Thermophilic Biocathode Catalyzing Electromethanogenesis [J].
Fu, Qian ;
Kuramochi, Yoshihiro ;
Fukushima, Naoya ;
Maeda, Haruo ;
Sato, Kozo ;
Kobayashi, Hajime .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2015, 49 (02) :1225-1232
[15]   Biochar and magnetite promote methanogenesis during anaerobic decomposition of rice straw [J].
Huang, Junjie ;
Ma, Ke ;
Xia, Xingxuan ;
Gao, Kailin ;
Lu, Yahai .
SOIL BIOLOGY & BIOCHEMISTRY, 2020, 143
[16]   Cellular electron transfer in anaerobic photo-assisted biocathode microbial electrosynthesis systems for acetate production from inorganic carbon (HCO3-) [J].
Huang, Liping ;
Xu, Zijing ;
Shi, Yinghong ;
Zhang, Yu ;
Li Puma, Gianluca .
CHEMICAL ENGINEERING JOURNAL, 2022, 431
[17]   Metatranscriptomic Evidence for Magnetite Nanoparticle-Stimulated Acetoclastic Methanogenesis under Continuous Agitation [J].
Inaba, Ryo ;
Nagoya, Misa ;
Kouzuma, Atsushi ;
Watanabe, Kazuya .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2019, 85 (23)
[18]   Energy recovery from the carbon dioxide for green and sustainable environment using iron minerals as electron donor [J].
Irfan, Muhammad ;
Zhou, Lei ;
Ji, Jia-Heng ;
Yuan, Shan ;
Liu, Jin-Feng ;
Yang, Shi-Zhong ;
Gu, Ji-Dong ;
Mu, Bo-Zhong .
JOURNAL OF CLEANER PRODUCTION, 2020, 277
[19]   Biodegradation of Lindane (γ-Hexachlorocyclohexane) To Nontoxic End Products by Sequential Treatment with Three Mixed Anaerobic Microbial Cultures [J].
Jacome, Luz A. Puentes ;
Lomheim, Line ;
Gaspard, Sarra ;
Edwards, Elizabeth A. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2021, 55 (05) :2968-2979
[20]   Bioelectrochemical systems for simultaneously production of methane and acetate from carbon dioxide at relatively high rate [J].
Jiang, Yong ;
Su, Min ;
Zhang, Yao ;
Zhan, Guoqiang ;
Tao, Yong ;
Li, Daping .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (08) :3497-3502