Renewable fuels strengthening carbon reduction towarding Carbon Net Zero commitment – Part 2: Renewable electricity and eFuel - potential alternative energy fuels

Authors

  • Nguyen Khanh Dieu Hong
  • Dinh Thi Ngo School of Chemistry and Life Sciences, Hanoi University of Science and Technology, 1 Dai Co Viet, Hanoi, Vietnam
  • Nguyen Dang Toan Vingroup Innovation Foundation (VinIF), Vingroup Big Data Institute, Vingroup Joint Stock Company

DOI:

https://doi.org/10.62239/jca.2026.001

Keywords:

eFuel; renewable electricity; lithium battry; Carbon Net Zero.

Abstract

Achieving Net Zero Carbon requires the adoption of new and alternative renewable electricity and synthetic fuels (eFuels). This paper provides an overview of strategies for reducing carbon emissions through these methodologies. Renewable electricity can be obtained from gas, biomass, fuel cells using different types of feedstock, and rechargeable batteries. Synthetic fuels or eFuels can be produced by combining renewable hydrogen with CO₂, enabling chemical storage of renewable energy and reducing greenhouse gas emissions (GHG). By integrating alternative renewable electricity with eFuel technologies, it is possible to enhance energy flexibility and accelerate progress toward a sustainable, Carbon-Neutral future.

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References

Dinh Thi Ngo, Nguyen Khanh Dieu Hong, Nguyen Dang Toan, Renewable fuels strengthening carbon reduction towarding Carbon Net Zero commitment, 14(3) (2025) 1-16. https://doi.org/10.62239/jca.2025.031

Paraschiv, L. S., Contribution of renewable energy (hydro, wind, solar and biomass) to decarbonization and transformation of the electricity generation sector for sustainable development, Energy Reports 9 (2023) 535-544. https://doi.org/10.1016/j.egyr.2023.07.024

Amjith, L. R. et al., A review on biomass and wind as renewable energy for sustainable environment, Chemosphere 293 (2022) 133579. https://doi.org/10.1016/j.chemosphere.2022.133579

IEA, World Energy Outlook 2021 (2021) Available at: www.iea.org/reports/world-energyoutlook-2021.

Evans, A., Strezov, V., and Evans, T.J., Sustainability considerations for electricity generation from biomass. Renewable and Sustainable Energy Reviews 14 (5) (2010) 1419–1427. https://doi.org/10.1016/j.rser.2010.01.010

Porpatham, E., Ramesh, A., and Nagalingam, B., Effect of compression ratio on the performance and combustion of a biogas fuelled spark ignition engine. Fuel 95 (2012) 247–256. https://doi.org/10.1016/j.fuel.2011.10.059

Kumari, G., and Karmee, S.K., Thermochemical route applying biomass: A critical assessment, Handbook of Biofuels (2022) 435–451. https://doi.org/10.1016/B978-0-12-822810-4.00022-1

Adams, P., Bridgwater, T., Lea-Langton, A., et al., Biomass conversion technologies, Greenhouse Gases Balances of Bioenergy Systems (2018) 107–139. https://doi.org/10.1016/B978-0-08-101036-5.00008-2

Roddy, D.J., and Manson-Whitton, C., Biomass gasification and pyrolysis. In: Comprehensive Renewable Energy, (2012) 133–153. https://doi.org/10.1016/B978-0-08-087872-0.00514-X

Akolgo, G., Kemausuor, F., Essandoh, E.O., et al., Review of biomass gasification technologies: Guidelines for the Ghanaian situation. International Journal of Engineering Science and Application 3 (2019) 4.

Recca, N., Gasification Technology for Clean, Cost-Effective Biomass Electricity Generation (1997) Available at: https://www.nrel.gov/docs/legosti/fy97/22315.pdf. Accessed 15 June 2024.

Sikarwar, V.S., Zhao, M., Clough, P., et al., An overview of advances in biomass gasification. Energy & Environmental Science 9 (10) (2016) 2939–2977. https://doi.org/10.1039/C6EE00935B

Pang, S., Advances in thermochemical conversion of woody biomass to energy, fuels and chemicals. Biotechnology Advances 37 (4) (2019) 589–597. https://doi.org/10.1016/j.biotechadv.2018.11.004

Zhou, N., Zhou, J., Dai, L., et al. Syngas production from biomass pyrolysis in a continuous microwave assisted pyrolysis system. Bioresource Technology 314 (2020) 123756. https://doi.org/10.1016/j.biortech.2020.123756

Ruiz, J.A., Juárez, M.C., Morales, M.P., et al. Biomass gasification for electricity generation: Review of current technology barriers. Renewable and Sustainable Energy Reviews 18 (2013) 174–183. https://doi.org/10.1016/j.rser.2012.10.021

Toonssen, R., Woudstra, N., and Verkooijen, A.H.M. Decentralized generation of electricity from biomass with proton exchange membrane fuel cell. Journal of Power Sources 194 (1) (2009) 456–466. https://doi.org/10.1016/j.jpowsour.2009.05.044

Athanasiou, C., Coutelieris, F., Vakouftsi, E., et al. From biomass to electricity through integrated gasification/SOFC system-optimization and energy balance. International Journal of Hydrogen Energy 32 (3) (2007) 337–342. https://doi.org/10.1016/j.ijhydene.2006.06.048

Neeraj, Shashikant Yadav, Chapter 1 - Microalgal biofuels: From biomass to bioenergy, Microalgal Biomass for Bioenergy Applications, Woodhead Series in Bioenergy, (2024) 3-22. https://doi.org/10.1016/B978-0-443-13927-7.00001-3

J. Appleby and F. R. Foulkes, Fuel Cell Handbook (1993).

H. Heimes, S. Wennemar, A. Kampker, G. Bockey, Production Process of a Lithium-Ion Battery Cell Aachen (2023).

S. Singh, M. Oberle, D. Schel, J. Grimm, O. Meyer, K.P. Birke, M. Grieves, E.Y. Hua (Eds.), Digital Twins, Simulation, and the Metaverse: Driving Efficiency and Effectiveness in the Physical World through Simulation in the Virtual Worlds, Springer, Cham (2024) 363-393.

W. Qu, J. Li, R. Zhang, S. Liu, J. Bao, J. Intell. Manuf., 35 (2024) 2021-2043. https://doi.org/10.1007/s10845-023-02081-9

M.-J. Peng, J.-Q. Zhou, T.-T. Han, Y. Zhou, J. Liu, N. Xu, Z.-K. Wang, W.-B. Lin, C.-L. Yan, Rare Met., 43 (2024) 2527-2535. https://doi.org/10.1007/s12598-023-02609-1

Mann M, Babinec S, Putsche V. Energy storage grand challenge: energy storage market report (No. NREL/TP-5400-78461) (2020) Golden, CO (United States): National Renewable Energy Lab.(NREL).

Deng H, Aifantis KE. Applications of lithium batteries. Rechargeable ion batteries: materials, design and applications of li-ion cells and beyond (2023) 83–103. https://doi.org/10.1002/9783527836703.ch4

Killer M, Farrokhseresht M, Paterakis NG. Implementation of large-scale Li-ion battery energy storage systems within the EMEA region. Applied energy, 260 (2020) 114166. https://doi.org/10.1016/j.apenergy.2019.114166

Ayeng’o SP, Schirmer T, Kairies KP, Axelsen H, Sauer DU. Comparison of off-grid power supply systems using lead-acid and lithium-ion batteries. Sol Energy, 162 (2018) 140–52. https://doi.org/10.1016/j.solener.2017.12.049

http://energytransitionpartnership.org/wp-content/uploads/2025/08/20250402_Phase-1-report_EN1.pdf

Maurizio Clemente, Prapti Maharjan, Mauro Salazar, Theo Hofman, Meta-analysis of life cycle assessments for Li-ion batteries production emissions, The International Journal of Life Cycle Assessment (2025) https://doi.org/10.1007/s11367-025-02541-9

Kalogiannis T, Akbarzadeh M, Hosen MS, Behi H, De Sutter L, Jin L, Jaguemont J, Van Mierlo J, Berecibar M. Effects analysis on energy density optimization and thermal efficiency enhancement of the air-cooled Li-ion battery modules, J Energy Storage, 48 (2022) 103847. https://doi.org/10.1016/j.est.2021.103847

McCloskey BD, Bethune DS, Shelby RM, Mori T, Scheffler R, Speidel A, Sherwood M, Luntz AC. Limitations in rechargeability of Li-O2 batteries and possible origins. J Phys Chem Lett, 3(20) (2012) 3043–7. https://doi.org/10.1021/jz301359t

Marchiori CF, Carvalho RP, Ebadi M, Brandell D, Araujo CM. Understanding the electrochemical stability window of polymer electrolytes in solid-state batteries from atomic-scale modeling: the role of Li-ion salts. Chem Mater, 32(17) (2020) 7237–46. https://doi.org/10.1021/acs.chemmater.0c01489

Mikolajczak C, Kahn M, White K, Long RT. Lithium-ion batteries hazard and use assessment. Springer Science & Business Media (2012).

Walter M, Kovalenko MV, Kravchyk KV. Challenges and benefits of post-lithium- ion batteries. New J Chem, 44(5) (2020) 1677–83. https://doi.org/10.1039/C9NJ05682C

Chombo PV, Laoonual Y. A review of safety strategies of a Li-ion battery. J Power Sources, 478 (2020) 228649. https://doi.org/10.1016/j.jpowsour.2020.228649

Kebede AA, Kalogiannis T, Van Mierlo J, Berecibar M. A comprehensive review of stationary energy storage devices for large scale renewable energy sources grid integration. Renew Sustain Energy Rev, 159 (2022) 112213. https://doi.org/10.1016/j.rser.2022.112213

Li W, Dolocan A, Oh P, Celio H, Park S, Cho J, Manthiram A. Dynamic behaviour of interphases and its implication on high-energy-density cathode materials in lithium-ion batteries. Nat Commun, 8(1) (2017) 14589. doi: 10.1038/ncomms14589 (2017).

Graeber G, Thatipamula VS. Beyond lithium-ion batteries: shaping the transition to sustainable electrochemical energy storage (2022).

Nitta N, Wu F, Lee JT, Yushin G., Li-ion battery materials: present and future, Mater Today, 18(5) (2015) 252–64. https://doi.org/10.1016/j.mattod.2014.10.040

Niri MF, Liu K, Apachitei G, Roman-Ramírez LA, Lain M, Widanage D, Marco J. Quantifying key factors for optimised manufacturing of Li-ion battery anode and cathode via artificial intelligence. Energy and AI, 7 (2022) 100129. https://doi.org/10.1016/j.egyai.2021.100129

Salakjani NK, Singh P, Nikoloski AN. Production of lithium–A literature review part 1: Pre-treatment of spodumene. Miner Process Extr Metall Rev, 41(5) (2020) 335–48. https://doi.org/10.1080/08827508.2019.1643343

Sankaran G, Venkatesan S. An overview of Lithium-Ion batteries for electric mobility and energy storage applications. IOP Conf Ser Earth Environ Sci, 1042(1) (2022) 012012. DOI 10.1088/1755-1315/1042/1/012012

Florin N, Dominish E. Sustainability evaluation of energy storage technologies (2017).

Luntz AC, Voss J, Reuter K. Interfacial challenges in solid-state Li ion batteries, J Phys Chem Lett, 6(22) (2015) 4599–604. https://doi.org/10.1021/acs.jpclett.5b02352

Chayambuka K, Mulder G, Danilov DL, Notten PH. From li-ion batteries toward na-ion chemistries: challenges and opportunities. Adv Energy Mater 10(38) (2020) 2001310. https://doi.org/10.1002/aenm.202001310

Hu YS, Lu Y. Nobel prize for the Li-ion batteries and new opportunities and challenges in Na-ion batteries. ACS Energy Lett, 4(11) (2019) 2689–90. https://doi.org/10.1021/acsenergylett.9b02190

Du L, Cheng X, Gao F, Li Y, Bu Y, Zhang Z, Wu Q, Yang L, Wang X, Hu Z. Electrocatalysis of S-doped carbon with weak polysulfide adsorption enhances lithium–sulfur battery performance. Chem Commun 55(45) (2019) 6365–8. https://doi.org/10.1039/C9CC02134E

Wang X, Li S, Zhang W, Wang D, Shen Z, Zheng J, Zhuang HL, He Y, Lu Y. Dual- salt-additive electrolyte enables high-voltage lithium metal full batteries capable of fast-charging ability. Nano Energy 89 (2021) 106353. https://doi.org/10.1016/j.nanoen.2021.106353

Logan ER, Dahn JR. Electrolyte design for fast-charging Li-ion batteries. Trends Chem 2(4) (2020) 354–66. https://doi.org/10.1016/j.trechm.2020.01.011

Huang J, Liang F, Hou M, Zhang Y, Chen K, Xue D. Garnet-type solid-state electrolytes and interfaces in all-solid-state lithium batteries: progress and perspective. Appl Mater Today 20 (2020) 100750. https://doi.org/10.1016/j.apmt.2020.100750

Li S, Yang Z, Wang SB, Ye M, He H, Zhang X, Nan CW, Wang S. Sulfide-based composite solid electrolyte films for all-solid-state batteries. Communications Materials 5(1) (2024) 44. DOI:10.1038/s43246-024-00482-8

Bai H, Zhu X, Ao H, He G, Xiao H, Chen Y. Advances in sodium-ion batteries at low-temperature: challenges and strategies. J Energy Chem 90 (2024) 518–39. https://doi.org/10.1016/j.jechem.2023.11.004

Zheng X, Cai Z, Sun J, He J, Rao W, Wang J, Zhang Y, Gao Q, Han B, Xia K, Sun R. Nickel-rich layered oxide cathodes for lithium-ion batteries: failure mechanisms and modification strategies. J Energy Storage 58 (2023) 106405. https://doi.org/10.1016/j.est.2022.106405

Li W, Liu X, Xie Q, You Y, Chi M, Manthiram A. Long-term cyclability of NCM-811 at high voltages in lithium-ion batteries: an in-depth diagnostic study. Chem Mater 32(18) (2020) 7796–804. https://doi.org/10.1021/acs.chemmater.0c02398

Zhang M, Lv M, Zhang D, Yan Y, Wang Y, Li J, Li Z. Enhanced electrochemical properties of NCM811 cathode material due to synergistic modification with Sm as doping and coating agent. J Alloys Compd 909 (2022) 164712. https://doi.org/10.1016/j.jallcom.2022.164712

Pham TN, Ko J, Bui VKH, So S, Lee HU, Hur J, Lee YC. Facile two-step synthesis of innovative anode design from tin-aminoclay (SnAC) and rGO for Li-ion batteries. Appl Surf Sci 532 (2020) 147435. https://doi.org/10.1016/j.apsusc.2020.147435

Mao W, Yue W, Xu Z, Wang J, Zhang J, Li D, Zhang B, Yang S, Dai K, Liu G, Ai G. Novel hoberman sphere design for interlaced Mn3O4@ CNT architecture with atomic layer deposition-coated TiO2 overlayer as advanced anodes in li-ion battery. ACS Appl Mater Interfaces 12(35) (2020) 39282–92. https://doi.org/10.1021/acsami.0c11282

Georgi-Maschler T, Friedrich B, Weyhe R, Heegn H, Rutz M. Development of a recycling process for Li-ion batteries. J Power Sources 207 (2012) 173–82. https://doi.org/10.1016/j.jpowsour.2012.01.152

Ram, V.; Salkuti, S.R. An Overview of Major Synthetic Fuels. Energies 16, (2023) 2834. https://doi.org/10.3390/en16062834

Mahajan, D.; Tan, K.; Venkatesh, T.; Kileti, P.; Clayton, C.R. Hydrogen Blending in Gas Pipeline Networks—A Review. Energies, 15 (2022) 3582. https://doi.org/10.3390/en15103582

Habib, M.A.; Abdulrahman, G.A.Q.; Alquaity, A.B.S.; Qasem, N.A.A. Hydrogen combustion, production, and applications: A review. Alex. Eng. J., 100 (2024) 182–207. https://doi.org/10.1016/j.aej.2024.05.030

Galimova, T.; Ram, M.; Bogdanov, D.; Fasihi, M.; Gulagi, A.; Khalili, S. Global trading of renewable electricity-based fuels and chemicals to enhance the energy transition across all sectors towards sustainability. Renew. Sustain. Energy Rev., 183 (2023) 113420. https://doi.org/10.1016/j.rser.2023.113420

Ram, V.; Salkuti, S.R. An Overview of Major Synthetic Fuels. Energies, 16 (2023) 2834. https://doi.org/10.3390/en16062834

Yoro, K.O.; Daramola, M.O. Chapter 1—CO2 emission sources, greenhouse gases, and the global warming effect. In Advances in Carbon Capture; Rahimpour, M.R., Farsi, M., Makarem, M.A., Eds.; Woodhead Publishing: Cambridge, UK (2020) 3–28.

Yue, X.L.; Gao, Q.X. Contributions of natural systems and human activity to greenhouse gas emissions. Adv. Clim. Chang. Res., 9 (2018) 243–252. https://doi.org/10.1016/j.accre.2018.12.003

Bruhwiler, L.; Michalak, A.M.; Birdsey, R.; Fisher, J.B.; Houghton, R.A.; Huntzinger, D.N.; Miller, J.B. Chapter 1: Overview of the global carbon cycle. In Second State of the Carbon Cycle Report (SOCCR2): A Sustained Assessment Report; U.S. Global Change Research Program: Washington, DC, USA (2018) 42–70.

CO2 Human Emissions. How do Human CO2 Emissions Compare to Natural CO2 Emissions? https://www.che-project.eu/news/how-do-human-co2-emissions-compare-natural-co2-emissions (2024).

Wilberforce, T.; Olabi, A.G.; Sayed, E.T.; Elsaid, K.; Abdelkareem, M.A. Progress in carbon capture technologies. Sci. Total Environ., 761 (2021) 143203. https://doi.org/10.1016/j.scitotenv.2020.143203

Global CCS Institute. https://www.globalccsinstitute.com/resources/global-status-of-ccs-2022/ (2023).

Wilberforce, T.; Baroutaji, A.; Soudan, B.; Al-Alami, A.H.; Olabi, A.G. Outlook of carbon capture technology and challenges. Sci. Total Environ., 657 (2019) 56–72. https://doi.org/10.1016/j.scitotenv.2018.11.424

Hardenburger, T.L.; Ennis, M. Nitrogen. In Kirk-Othmer Encyclopedia of Chemical Technology; John Wiley & Sons (2000) Ltd.: London, UK.

Sánchez, A.; Martín, M. Scale up and scale down issues of renewable ammonia plants: Towards modular design. Sustain. Prod. Consum., 16 (2018) 176–192. https://doi.org/10.1016/j.spc.2018.08.001

Sonia Dell’Aversano, Carlo Villante, Katia Gallucci, Giuseppina Vanga, Andrea Di Giuliano E-Fuels: A Comprehensive Review of the Most Promising Technological Alternatives towards an Energy Transition, Energies, 17(16) (2024) 3995. https://doi.org/10.3390/en17163995

https://www.fortunebusinessinsights.com/e-fuel-market-109586

https://www.iea.org/data-and-statistics/charts/renewable-hydrogen-and-e-fuel-demand-main-case-2030

Published

31-03-2026

Issue

Section

Reviews

How to Cite

Renewable fuels strengthening carbon reduction towarding Carbon Net Zero commitment – Part 2: Renewable electricity and eFuel - potential alternative energy fuels. (2026). Vietnam Journal of Catalysis and Adsorption, 15(1), 1-15. https://doi.org/10.62239/jca.2026.001

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