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1 Ergebnisse
1
Methane Oxidation Coupled to Selenate Reduction in a Membra..:
Yulu Wang
;
Mengxiong Wu
;
Chun-Yu Lai
..
doi:10.1021/acs.est.3c04958.s001. , 2023
Link:
https://doi.org/10.1021/acs.est.3c04958.s001
RT Journal T1
Methane Oxidation Coupled to Selenate Reduction in a Membrane Bioreactor under Oxygen-Limiting Conditions
UL https://suche.suub.uni-bremen.de/peid=base-ftdeakinunifig:oai:figshare.com:article_24790679&Exemplar=1&LAN=DE A1 Yulu Wang A1 Mengxiong Wu A1 Chun-Yu Lai A1 Xuanyu Lu A1 Jianhua Guo YR 2023 K1 Biochemistry K1 Microbiology K1 Molecular Biology K1 Ecology K1 Inorganic Chemistry K1 Infectious Diseases K1 Space Science K1 Environmental Sciences not elsewhere classified K1 Biological Sciences not elsewhere classified K1 underlying microbial mechanisms K1 throughput sequencing analyses K1 possible intermediates suggested K1 microbial metabolic mechanisms K1 microbial consortia consisting K1 ii aerobic methanotrophs K1 functional genes (< K1 efficient gas delivery K1 16s rrna gene K1 term batch tests K1 selenate reduction process K1 drive selenate reduction K1 dependent selenate reduction K1 treat contaminated water K1 methane oxidation coupled K1 13 </ sup K1 selenate reduction K1 contaminated water K1 validation tests K1 pmoa </ K1 narg </ K1 dominant selenate K1 ultrafiltration membranes K1 thus forming K1 systematically investigated K1 syntrophic partnership K1 still unclear K1 reducing bacteria K1 promising solution K1 perform methane K1 partially oxidized K1 novel methane K1 microcosm incubation K1 membrane bioreactor K1 mass balance K1 limiting conditions K1 developing methane K1 carbon source K1 biomass retention K1 based biotechnology JF doi:10.1021/acs.est.3c04958.s001 LK http://dx.doi.org/https://doi.org/10.1021/acs.est.3c04958.s001 DO https://doi.org/10.1021/acs.est.3c04958.s001 SF ELIB - SuUB Bremen
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