Enhancing system stability in power-to-gas applications: integrating biological hydrogen methanation and microbial electrolysis cells under hydrogen overloading in various injection modes

Afrooz Bayat , Ricardo Bello-Mendoza

Bioresources and Bioprocessing ›› 2025, Vol. 12 ›› Issue (1) : 135

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Bioresources and Bioprocessing ›› 2025, Vol. 12 ›› Issue (1) :135 DOI: 10.1186/s40643-025-00974-6
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Enhancing system stability in power-to-gas applications: integrating biological hydrogen methanation and microbial electrolysis cells under hydrogen overloading in various injection modes

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Abstract

Volatile fatty acid (VFA) accumulation is a common issue that compromises the performance of biological hydrogen methanation systems (BHMs). This accumulation is often triggered by fluctuations in hydrogen supply, which can disrupt microbial activity and lead to system instability. To address this challenge, this study investigated the impact of employing a microbial electrolysis cell (MEC) in BHMs to mitigate system instability and acid build-up. As such, a conventional anaerobic digester (AD) and a microbial electrolysis cell, both supplemented with exogenous hydrogen, were evaluated for their performance in hydrogen methanation. The effect of exogenous hydrogen at high addition rates (> 4:1 CO2:H2 molar ratio) under instantaneous and gradual injection modes was investigated. The results showed that the instantaneous addition of hydrogen resulted in the total failure of the anaerobic digestion system. Propionate accumulated in the system (> 2 g/L) and resulted in low pH (pH = 5.3). Methane production stopped, and the reactor never recovered from hydrogen shock. However, the microbial electrolysis system was able to withstand the instantaneous hydrogen addition and maintain normal operation under toxic hydrogen addition levels (> 4:1 CO2:H2 molar ratio). Under the gradual injection mode, both MEC and AD reactors remained reasonably unaffected; even though the hydrogen injection exceeded the stoichiometric molar ratio. This study provides a new perspective on the application of MECs for reliable operation and storage of surplus renewable energy via biological hydrogen methanation.

Keywords

Biological hydrogen methanation / Microbial electrolysis cells / VFA accumulation / Anaerobic digestion / Power-to-gas (PtG)

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Afrooz Bayat, Ricardo Bello-Mendoza. Enhancing system stability in power-to-gas applications: integrating biological hydrogen methanation and microbial electrolysis cells under hydrogen overloading in various injection modes. Bioresources and Bioprocessing, 2025, 12(1): 135 DOI:10.1186/s40643-025-00974-6

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References

[1]

Agneessens LM, Ottosen LDM, Voigt NV, Nielsen JL, de Jonge N, Fischer CH, Kofoed MVW. In-situ biogas upgrading with pulse H2 additions: the relevance of methanogen adaption and inorganic carbon level. Bioresour Technol, 2017, 233: 256-263

[2]

Alfaro N, Fdz-Polanco M, Fdz-Polanco F, Diaz I. H2 addition through a submerged membrane for in-situ biogas upgrading in the anaerobic digestion of sewage sludge. Bioresour Technol, 2019, 280: 1-8

[3]

Alfaro Borjabad N (2018) From biogas to biomethane. Biological conversion of H2 and CO2 to CH4. Dissertation, Universidad de Valladolid,

[4]

Andriani D, Wresta A, Atmaja TD, Saepudin A. A review on optimization production and upgrading biogas through CO2 removal using various techniques. Appl Biochem Biotechnol, 2014, 172: 1909-1928

[5]

Angelidaki I, Sanders W. Assessment of the anaerobic biodegradability of macropollutants. Rev Environ Sci Biotechnol, 2004, 3: 117-129

[6]

Bayat A, Bello-Mendoza R. Bio-electrochemical nitrogen removal in wastewater: coupling anodic ammonium oxidation with hydrogenotrophic denitrification in a microbial electrolysis cell. Bioelectrochemistry, 2025, 168: 109107

[7]

Bensmann A, Hanke-Rauschenbach R, Heyer R, Kohrs F, Benndorf D, Reichl U, Sundmacher K. Biological methanation of hydrogen within biogas plants: a model-based feasibility study. Appl Energy, 2014, 134: 413-425

[8]

Bhatia RK, Ramadoss G, Jain AK, Dhiman RK, Bhatia SK, Bhatt AK. Conversion of waste biomass into gaseous fuel: present status and challenges in India. BioEnergy Research, 2020, 13: 1046-1068

[9]

Burke D (2001) Dairy Waste Anaerobic Digestion Handbook.

[10]

Carrillo-Reyes J, Albarrán-Contreras BA, Buitrón G. Influence of added nutrients and substrate concentration in biohydrogen production from winery wastewaters coupled to methane production. Appl Biochem Biotechnol, 2019, 187: 140-151

[11]

Chen Y-T, Yu N, Sun Z-Y, Gou M, Xia Z-Y, Tang Y-Q, Kida K. Acclimation improves methane production from molasses wastewater with high salinity in an upflow anaerobic filter reactor: performance and microbial community dynamics. Appl Biochem Biotechnol, 2020, 191: 397-411

[12]

Cheng S, Xing D, Call DF, Logan BE. Direct biological conversion of electrical current into methane by electromethanogenesis. Environ Sci Technol, 2009, 43(10): 3953-3958

[13]

Cristiani L, Zeppilli M, Fazi G, Marandola C, Villano M. Renewable gases production coupled to synthetic wastewater treatment through a microbial electrolysis cell. Biochem Eng J, 2024, 205 109249

[14]

De Albuquerque JN, Paulinetti AP, Lovato G, Albanez R, Ratusznei SM, Rodrigues JAD. Anaerobic sequencing batch reactors co-digesting whey and glycerin as a possible solution for small and mid-size dairy industries: Environmental compliance and methane production. Appl Biochem Biotechnol, 2020, 192: 979-998

[15]

Dupnock TL, Deshusses MA. High-performance biogas upgrading using a biotrickling filter and hydrogenotrophic methanogens. Appl Biochem Biotechnol, 2017, 183: 488-502

[16]

Fisgativa H, Tremier A, Dabert P. Characterizing the variability of food waste quality: a need for efficient valorisation through anaerobic digestion. Waste Manag, 2016, 50: 264-274

[17]

Gorre J, Ruoss F, Karjunen H, Schaffert J, Tynjälä T. Cost benefits of optimizing hydrogen storage and methanation capacities for Power-to-Gas plants in dynamic operation. Appl Energy, 2020, 257 113967

[18]

Guo X, Liu J, Xiao B. Bioelectrochemical enhancement of hydrogen and methane production from the anaerobic digestion of sewage sludge in single-chamber membrane-free microbial electrolysis cells. Int J Hydrogen Energy, 2013, 38(3): 1342-1347

[19]

Guo C, Ma Y, Li Y, Wang Z, Lin S, Dong R, Liu S. Effects of hydrothermal pretreatment and anaerobic digestion of pig manure on the antibiotic removal and methane production. Appl Biochem Biotechnol, 2024, 196(10): 7104-7127

[20]

Kullavanijaya P, Chavalparit O. Biomethanation of napier grass mono-digestion in single-stage anaerobic completely stirred tank reactors seeded with cow manure and anaerobic sludge. BioEnergy Res, 2022, 15(1): 559-572

[21]

Kundu K, Sharma S, Sreekrishnan T. Influence of process parameters on anaerobic digestion microbiome in bioenergy production: towards an improved understanding. BioEnergy Res, 2017, 10: 288-303

[22]

Li D. Model application to a lab-scale thermophilic hydrogenotrophic methanation system. Biochem Eng J, 2022, 177 108228

[23]

Liu J, Zuo X, Peng K, He R, Yang L, Liu R. Biogas and volatile fatty acid production during anaerobic digestion of straw, cellulose, and hemicellulose with analysis of microbial communities and functions. Appl Biochem Biotechnol, 2022, 194(2): 762-782

[24]

Liu S, Ma X, Yao S, Zhu X, Ma Y, Chen Z, Liang J. Anaerobic digestion enhancement of brewery sludge assisted by exogenous hydrogen. BioEnergy Res, 2024, 17(3): 1943-1952

[25]

Lovato G, Ratusznei SM, Rodrigues JAD, Zaiat M. Co-digestion of whey with glycerin in an A n SBBR for biomethane production. Appl Biochem Biotechnol, 2016, 178: 126-143

[26]

Meegoda JN, Li B, Patel K, Wang LB. A review of the processes, parameters, and optimization of anaerobic digestion. Int J Environ Res Public Health, 2018, 15(10): 2224

[27]

Park J-G, Heo T-Y, Kwon H-J, Shi W-Q, Jun H-B. Effects of voltage supply on the methane production rates and pathways in an anaerobic digestion reactor using different electron donors. Int J Hydrogen Energy, 2020, 45(169459-9468

[28]

Primmer N (2021) Biogas: pathways to 2030.

[29]

Rocamora I, Wagland ST, Hassard F, Villa R, Peces M, Simpson EW, Fernández O, Bajón-Fernández Y. Inhibitory mechanisms on dry anaerobic digestion: ammonia, hydrogen and propionic acid relationship. Waste Manage, 2023, 161: 29-42

[30]

Rusmanis D, O’Shea R, Wall DM, Murphy JD. Biological hydrogen methanation systems–an overview of design and efficiency. Bioengineered, 2019, 10(1): 604-634

[31]

Savvas S, Gangappa R, Ni X-W, Davies W, Barton W, Thomason M, Patterson T, Esteves SR. The tubular baffled reactor and its potential for the biological methanation of carbon dioxide. Renew Energy, 2024, 232 121053

[32]

Vechi NT, Agneessens LM, Feilberg A, Ottosen LDM, Kofoed MVW. In situ biomethanation: Inoculum origin influences acetate consumption rate during hydrogen addition. Bioresour. Technol. Rep., 2021, 14: 100656

[33]

Wang T-T, Sun Z-Y, Huang Y-L, Tan L, Tang Y-Q, Kida K. Biogas production from distilled grain waste by thermophilic dry anaerobic digestion: pretreatment of feedstock and dynamics of microbial community. Appl Biochem Biotechnol, 2018, 184: 685-702

[34]

Wang H-Z, Yan Y-C, Gou M, Yi Y, Xia Z-Y, Nobu MK, Narihiro T, Tang Y-Q. Response of propionate-degrading methanogenic microbial communities to inhibitory conditions. Appl Biochem Biotechnol, 2019, 189: 233-248

[35]

Wei X, Shi X, Li Y, Ban S, Ma H, Yang C. Experimental and theoretical research on the feasibility of oil storage in sediment voids for salt cavern oil storage (SCOS). Geoenergy Sci Eng, 2025, 250 213851

[36]

Wei X, Shi X, Li Y, Liu H, Huang Y, Ban S. Experimental and numerical research on the tightness and stability of cavern roofs for underground salt cavern oil storage in high-impurity salt mines. Rock Mech Rock Eng, 2025, 58: 10359-10380

[37]

Wei X, Shi X, Li Y, Ma H, Li P, Yang K, Hong Y. Oil flows in the insoluble sediment voids for the underground salt cavern oil energy storage: Insights from liquid-liquid two-phase flow. Geoenergy Sci Eng, 2025, 254: 214026

[38]

Wei X, Shi X, Ma H, Ban S. A comprehensive feasibility evaluation of hydrogen-carbon-salt cavern-renewable energy (HCSR) system. Energy, 2025, 331: 137040

[39]

Xiao Y, Zan F, Zhang W, Hao T. Alleviating nutrient imbalance of low carbon-to-nitrogen ratio food waste in anaerobic digestion by controlling the inoculum-to-substrate ratio. Biores Technol, 2022, 346 126342

[40]

Yang X, Wang F, Di L, Zheng X, Zhang D, Yi W. Upgrading methanization of anaerobic digestion: Based on introduction of static magnetic field. Biochem Eng J, 2025, 215 109611

[41]

Zheng M, Ou H, Dong F, He C, Hu Z, Wang W. Mechanism insights into enhanced treatment of wasted activated sludge by hydrogen-mediated anaerobic digestion. Environ Sci Pollut Res, 2023, 30(16): 47787-47799

[42]

Zhu X, Cao Q, Chen Y, Sun X, Liu X, Li D. Effects of mixing and sodium formate on thermophilic in-situ biogas upgrading by H2 addition. J Clean Prod, 2019, 216: 373-381

[43]

Zhu X, Chen L, Chen Y, Cao Q, Liu X, Li D. Differences of methanogenesis between mesophilic and thermophilic in situ biogas-upgrading systems by hydrogen addition. J Ind Microbiol Biotechnol, 2019, 46(111569-1581

[44]

Zhu X, Chen L, Chen Y, Cao Q, Liu X, Li D. Effect of H2 addition on the microbial community structure of a mesophilic anaerobic digestion system. Energy, 2020, 198: 117368

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