Thumbnail image for Substantially Improved Microbial Electrosynthesis of Methane Achieved by Improving Hydrogen Retention and Flow Distribution through Porous Electrodes

Substantially Improved Microbial Electrosynthesis of Methane Achieved by Improving Hydrogen Retention and Flow Distribution through Porous Electrodes

Efficient hydrogen utilization by microorganisms is crucial for improving the energy-to-chemical efficiency in microbial electrosynthesis (MES). We therefore developed a new rectangular zero-gap cell design featuring an extended flow path to improve hydrogen retention and conversion to biomethane. Multiphase flow modeling within porous carbon felt cathodes revealed the new configuration with a trapezoidal inlet substantially reduced flow dead zones and tripled hydrogen retention time versus circular cells. At −1 V vs Ag/AgCl, increasing catholyte flow rate from 0.8 to 2.5 mL/min raised current densities from 19 to 24 A/m2 (30 °C), reaching a peak Coulombic efficiency (CE) of 82% for methane production (7.0 L/L-d). Further increasing the flow rate to 7.5 mL/min or temperature to 37 °C slightly improved methane production (7.2–7.7 L/L-d) but reduced hydrogen retention in cells based on modeling results, lowering CEs and energy efficiencies due to unreacted hydrogen. Matching cathode potential to flow rates and temperatures could balance H2 production and retention, significantly improving CE to 96% toward 7.5 L/L-d methane production with a high energy efficiency of 36% (−0.95 V vs Ag/AgCl, 37 °C). These findings underscore the importance of improving flow distribution and hydrogen retention within zero-gap MES cells to enhance energy and Coulombic efficiencies.

This document is the Accepted Manuscript version of a Published Work that appeared in final form in Environmental Science & Technology, copyright ©, [include copyright notice from the published article] after peer review and technical editing by the publisher. To access the final edited and published work see [insert ACS Articles on Request author-directed link to Published Work, see ACS Articles on Request ].”

Files

Metadata

Work Title Substantially Improved Microbial Electrosynthesis of Methane Achieved by Improving Hydrogen Retention and Flow Distribution through Porous Electrodes
Access
Open Access
Creators
  1. Bin Bian
  2. Najiaowa Yu
  3. Nakyeong Yun
  4. Sen Li
  5. Xuechen Zhou
  6. Chenghan Xie
  7. Ruggero Rossi
  8. Bruce E. Logan
License In Copyright (Rights Reserved)
Work Type Article
Publisher
  1. Environmental Science & Technology
Publication Date July 1, 2025
Publisher Identifier (DOI)
  1. https://doi.org/10.1021/acs.est.5c02329
Deposited June 29, 2026

Versions

Analytics

Collections

This resource is currently not in any collection.

Work History

Version 1
published

  • Created
  • Added Creator Bin Bian
  • Added Creator Najiaowa Yu
  • Added Creator Nakyeong Yun
  • Added Creator Sen Li
  • Added Creator Xuechen Zhou
  • Added Creator Chenghan Xie
  • Added Creator Ruggero Rossi
  • Added Creator Bruce E. Logan
  • Updated
  • Added 2025-Bian_etal._ES_T._Rectangular_reactor.pdf
  • Updated
  • Updated Open access version Show Changes
    Open access version
    • unknownVersion
  • Updated Open access version Show Changes
    Open access version
    • unknownVersion
  • Updated Open access version Show Changes
    Open access version
    • unknownVersion
  • Updated Open access version Show Changes
    Open access version
    • unknownVersion
  • Updated Open access version Show Changes
    Open access version
    • unknownVersion
  • Updated Publication Date, Open access version, Publisher's Statement Show Changes
    Publication Date
    • 2025-07-15
    • 2025-07-01
    Open access version
    • unknownVersion
    • acceptedVersion
    Publisher's Statement
    • This document is the Accepted Manuscript version of a Published Work that appeared in final form in Environmental Science & Technology, copyright ©, 2025 American Chemical Society after peer review and technical editing by the publisher. To access the final edited and published work see https://doi.org/10.1021/acs.est.5c02329.”
  • Updated Creator Bin Bian
  • Updated Creator Najiaowa Yu
  • Updated Creator Nakyeong Yun
  • Updated Creator Sen Li
  • Updated Creator Xuechen Zhou
  • Updated Creator Chenghan Xie
  • Updated Creator Ruggero Rossi
  • Updated License, Publisher's Statement Show Changes
    License
    • https://rightsstatements.org/page/InC/1.0/
    Publisher's Statement
    • This document is the Accepted Manuscript version of a Published Work that appeared in final form in Environmental Science & Technology, copyright ©, 2025 American Chemical Society after peer review and technical editing by the publisher. To access the final edited and published work see https://doi.org/10.1021/acs.est.5c02329.”
    • This document is the Accepted Manuscript version of a Published Work that appeared in final form in Environmental Science & Technology, copyright ©, [include copyright notice from the published article] after peer review and technical editing by the publisher. To access the final edited and published work see [insert ACS Articles on Request author-directed link to Published Work, see ACS Articles on Request ].”
  • Published

Version 2
published

  • Created
  • Deleted 2025-Bian_etal._ES_T._Rectangular_reactor.pdf
  • Added ACCESSIBLE_VERSION_2025-Bian_etal._ES_T._Rectangular_reactor.pdf
  • Published