Submitted:
30 June 2025
Posted:
01 July 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Algal Biomass: Composition and Biofuel Potential
2.1. Types of Algae
2.2. Advantages over Other Biomass Sources
3. Cultivation and Harvesting of Algae
3.1. Cultivation Systems
3.1.1. Open Raceway Ponds
3.1.2. Closed Photobioreactors
3.1.3. Wastewater-Based Cultivation
3.2. Growth Conditions and Nutrient Requirements
3.3. Harvesting and Dewatering Techniques
3.3.1. Filtration
3.3.2. Centrifuge
3.3.3. Flocculation
3.3.4. Flotation
4. Conversion Pathways for Algal Biofuels
4.1. Lipid Extraction and Transesterification
4.2. Thermochemical Conversion
4.3. Biochemical Conversion
5. Catalytic Strategies in Algal Biofuel Production
5.1. Heterogeneous Catalysis
5.2. Homogeneous Catalysis
5.3. Emerging Trends
5.3.1. Photocatalysis
5.3.2. Electrocatalysis
6. Integrated Algal Biorefineries
6.1. Concept and Design of Algal Biorefineries
6.2. Valorization of Co-Products (Proteins, Pigments, Fertilizers)
6.3. Energy and Economic Optimization
6.4. Life Cycle Assessment (LCA) and Sustainability Metrics
7. Recent Advances in Sustainable Technologies
7.1. Strain Improvement and Metabolic Engineering
7.2. Process Intensification Techniques
7.3. Wastewater-Based Cultivation and CO₂ Integration
7.4. Digital Tools: Process Modeling and Artificial Intelligence
8. Policy, Regulation, and Market Outlook
8.1. Global Policies Supporting Algal Biofuel Development
8.2. Subsidies, Incentives, and Carbon Credits
8.3. Market Trends and Commercialization Prospects
9. Challenges and Future Perspectives
9.1. Major Bottlenecks: Cost, Energy Input, and Scalability
9.2. Future R&D Directions: Synthetic Biology and Hybrid Technologies
9.3. Roadmap for Commercialization
10. Concluding Remark
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Cultivation System | Biomass productivity #break# (gL-1day-1) |
Advantage | Disadvantage | References |
|---|---|---|---|---|
| Open Raceway Ponds | 0.01-0.12 | Low capital and operating costs | High risk of contamination #break# Large land footprint |
[32,33,34] |
| Closed Photobioreactors | 1.5-1.6 | Higher productivity and better control of contamination and condition | High installation and maintenance cost | [33,35,36] |
| Wastewater based cultivation | 0.03-0.05 | Utilization of waste nutrients | Lower control overgrowth conditions | [34,37] |
| Method | Strain | Catalyst | Biofuel | Condition | Biofuel productivity | Ref |
|---|---|---|---|---|---|---|
| HTL | Nannochloropsis | Ni/TiO2 | Biocrude | 300°C | 48.2 wt% | [104] |
| Chlorella vulgaris | Co/TiO2 | Biocrude | 290°C | 57.8 wt% | [105] | |
| Spirulina maxima | Zeolite | Biocrude | 278°C | 53.8 wt% | [105] | |
| Trans-esterfication | Chlorella vulgaris | CaO | Biocrude | 70°C, 180 min | 92.0 wt% | [106] |
| Chlorella vulgaris | NaOH | Biodiesel | 60°C, #break# 75 min |
77.6 wt% | [107] | |
| Chlorella pyrenoidosa | H2SO4 | Biodiesel | 120°C, 120 min | 86.6 wt% | [108] | |
| Catalytic pyrolysis | Chlorella vulgaris | HZSM-5 | Bio-oil, aromatic | 500°C | 52.7 wt% | [109] |
|
Anaerobic #break# digestion |
Chlorella vulgaris | C. thermocellum | Methane | 52°C | 403mLg-1VS | [110] |
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