Submitted:
21 August 2025
Posted:
25 August 2025
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Abstract
Keywords:
1. Introduction
2. Materials and Methods
3. Hydrogen Production Technologies
4. Electrolysis Technologies for Green Hydrogen Production.
5. Renewable Integration and Hybrid Systems
6. Techno-Economic and Environmental Assessments.
- Green hydrogen has the lowest carbon intensity, typically near zero when produced with fully renewable electricity;
- Water demand is a critical consideration, particularly in dry regions where desalination is needed, increasing energy consumption and system complexity;
- Scarce materials: The need for platinum group metals (PGMs) such as iridium and platinum in PEM electrolyzers, and rare earths for related power electronics, is increasing;
- End-of-life management of system components, such as membrane recycling and safe disposal of catalysts, remains under-addressed in many studies.
7. Regional Feasibility in Sub-Saharan Africa
8. Emerging Technologies and Materials
9. Policy, Financing, and Social Considerations
10. Discussion
11. Conclusion
12. Patents
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| AEL | Alkaline Electrolyzer |
| AEM | Anion Exchange Membrane |
| CCS | Carbon Capture and Storage |
| CSP | Concentrated Solar Power |
| GHG | Greenhouse Gas |
| HEA | High Entropy Alloy |
| IRR | Internal Rate of Return |
| LCA | Life Cycle Assessment |
| LCOH | Levelized Cost of Hydrogen |
| MOF | Metal Organic Framework |
| PEM | Proton Exchange Membrane |
| PEC | Photoelectrochemical |
| PGMs | Platinum Group Metals |
| PV | Photovoltaic |
| R&D | Research and Development |
| SDG | Sustainable Development Goal |
| SMR | Steam Methane Reforming |
| SOEC | Solid Oxide Electrolysis Cell |
| SSA | Sub-Saharan Africa |
| VRE | Variable Renewable Energy |
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