Selective butyric acid production from CO2 and its upgrade to butanol in microbial electrosynthesis cells

被引:14
|
作者
Romans-Casas, Meritxell [1 ]
Feliu-Paradeda, Laura [2 ]
Tedesco, Michele [3 ]
Hamelers, Hubertus V. M. [3 ]
Baneras, Lluis [2 ]
Balaguer, M. Dolors [1 ]
Puig, Sebastia [1 ]
Dessi, Paolo [1 ]
机构
[1] Univ Girona, Inst Environm, LEQUiA, Campus Montilivi,Carrer Maria Aurelia Capmany 69, E-17003 Girona, Spain
[2] Univ Girona, Inst Aquat Ecol, Mol Microbial Ecol Grp, Maria Aurelia Capmany 40, Girona 17003, Spain
[3] European Ctr Excellence Sustainable Water Technol, Wetsus, Oostergoweg 9, NL-8911 MA Leeuwarden, Netherlands
关键词
Biocathode; Bioelectrochemical system; Chain elongation; Hydrogen partial pressure; Megasphaera; CARBON-DIOXIDE; ALCOHOLS;
D O I
10.1016/j.ese.2023.100303
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Microbial electrosynthesis (MES) is a promising carbon utilization technology, but the low-value products (i.e., acetate or methane) and the high electric power demand hinder its industrial adoption. In this study, electrically efficient MES cells with a low ohmic resistance of 15.7 mU m2 were operated galvanostatically in fed-batch mode, alternating periods of high CO2 and H2 availability. This promoted acetic acid and ethanol production, ultimately triggering selective (78% on a carbon basis) butyric acid pro-duction via chain elongation. An average production rate of 14.5 g m-2 d-1 was obtained at an applied current of 1.0 or 1.5 mA cm-2, being Megasphaera sp. the key chain elongating player. Inoculating a second cell with the catholyte containing the enriched community resulted in butyric acid production at the same rate as the previous cell, but the lag phase was reduced by 82%. Furthermore, interrupting the CO2 feeding and setting a constant pH2 of 1.7-1.8 atm in the cathode compartment triggered solventogenic butanol production at a pH below 4.8. The efficient cell design resulted in average cell voltages of 2.6-2.8 V and a remarkably low electric energy requirement of 34.6 kWhel kg-1 of butyric acid produced, despite coulombic efficiencies being restricted to 45% due to the cross-over of O2 and H2 through the membrane. In conclusion, this study revealed the optimal operating conditions to achieve energy-efficient butyric acid production from CO2 and suggested a strategy to further upgrade it to valuable butanol.& COPY; 2023 The Authors. Published by Elsevier B.V. on behalf of Chinese Society for Environmental Sciences, Harbin Institute of Technology, Chinese Research Academy of Environmental Sciences. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
引用
收藏
页数:9
相关论文
共 50 条
  • [11] Effect of Endogenous and Exogenous Butyric Acid on Butanol Production From CO by Enriched Clostridia
    He, Yaxue
    Lens, Piet N. L.
    Veiga, Maria C.
    Kennes, Christian
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2022, 10
  • [12] Medium chain fatty acid production from CO2 in integrated dark fermentation-microbial electrosynthesis reactor
    Chaitanya, Narnepati Krishna
    Chatterjee, Pritha
    BIORESOURCE TECHNOLOGY, 2025, 426
  • [13] Methanol as a co-substrate with CO2 enhances butyrate production in microbial electrosynthesis
    Yao, Hui
    Rinta-Kanto, Johanna M.
    Vassilev, Igor
    Kokko, Marika
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2024, 108 (01)
  • [14] Microbial electrosynthesis: Towards sustainable biorefineries for production of green chemicals from CO2 emissions
    Dessi, Paolo
    Rovira-Alsina, Laura
    Sanchez, Carlos
    Dinesh, G. Kumaravel
    Tong, Wenming
    Chatterjee, Pritha
    Tedesco, Michele
    Farras, Pau
    Hamelers, Hubertus M. V.
    Puig, Sebastia
    BIOTECHNOLOGY ADVANCES, 2021, 46
  • [15] Modelling the simultaneous production and separation of acetic acid from CO2 using an anion exchange membrane microbial electrosynthesis system
    Matemadombo, Fungisai
    Puig, Sebastia
    Ganigue, Ramon
    Ramirez-Garcia, Robert
    Batlle-Vilanova, Pau
    Dolors Balaguer, Marilos
    Colprim, Jesus
    JOURNAL OF CHEMICAL TECHNOLOGY AND BIOTECHNOLOGY, 2017, 92 (06) : 1211 - 1217
  • [16] Microbial Electrosynthesis and Anaerobic Fermentation: An Economic Evaluation for Acetic Acid Production from CO2 and CO (vol 50, pg 11234, 216)
    Christodoulou, X.
    Velasquez-Orta, S. B.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2017, 51 (11) : 6607 - 6607
  • [17] Microbial electrosynthesis of valuable chemicals from the reduction of CO2: a review
    Suri D.
    Aeshala L.M.
    Palai T.
    Environmental Science and Pollution Research, 2024, 31 (25) : 36591 - 36614
  • [18] Theory of transport and recovery in microbial electrosynthesis of acetate from CO2
    Dykstra, J. E.
    ter Heijne, A.
    Puig, S.
    Biesheuvel, P. M.
    ELECTROCHIMICA ACTA, 2021, 379
  • [19] Microbial electrosynthesis of acetate from CO2 under hypersaline conditions
    Zhang, Xiaoting
    Arbour, Tyler
    Zhang, Daijun
    Wei, Shiqiang
    Rabaey, Korneel
    ENVIRONMENTAL SCIENCE AND ECOTECHNOLOGY, 2023, 13
  • [20] Enhanced bio-production from CO2 by microbial electrosynthesis (MES) with continuous operational mode
    Izadi, Paniz
    Fontmorin, Jean-Marie
    Lim, Swee Su
    Head, Ian M.
    Yu, Eileen H.
    FARADAY DISCUSSIONS, 2021, 230 (00) : 344 - 359