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Microbial Electrosynthesis for Efficient CO 2 Conversion Using MXene: Materials, Mechanisms, and Future Perspectives—A Short Review
Guest Editors: Samet Şahin and Paniz Izadi , , , et al. “Microbial Electrosynthesis for Efficient CO2 Conversion Using MXene: Materials, Mechanisms, and Future Perspectives—A Short Review.” Fuel Cells26, no. 4 (2026): e70125. https://doi.org/10.1002/fuce.70125 References 1, , , and , “Fuelling the Future: Microbial Engineering for the Production of Sustainable Biofuels,” Nature Reviews Microbiology 14, no. 5 (2016): 288–304, https://doi.org/10.1038/nrmicro.2016.32.
Phosphoric Acid Electrolyte Uptake and Retention Analysis on UiO‐66‐NH2 Polybenzimidazole Nanocomposite Membranes
References 1, , , and , “Parameter Study of High-Temperature Proton Exchange Membrane Fuel Cell Using Data-Driven Models,” International Journal of Hydrogen Energy 44 (2019): 28958–28967. 2, “A Review of Physics-Based Low-Temperature Proton-Exchange Membrane Fuel Cell Models for System-Level Water and Thermal Management Studies,” Journal of Power Sources 558 (2023): 232585.
Commercial Anion Exchange Membranes (AEMs) for Fuel Cell and Water Electrolyzer Applications: Performance, Durability, and Materials Advancement
2. Current Achievement of Commercial AEM for AEMWE and AEMFC Applications 2.1. Working Principles of AEMWE and AEMFC AEMFCs are fuel cells that utilize AEMs to transport hydroxide ions (OH−) from the cathode to the anode. They combine hydrogen and oxygen to produce electricity, with water and heat as products. Equations (1)–(3) below describe the electrochemical reactions that occur on the surface of the catalyst in AEMFC with a direct four-electron path.
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