Submitted:
01 June 2026
Posted:
01 June 2026
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Abstract
Keywords:
1. Introduction
2. Literature Review
2.1. Biochar Manufacturing and Physicochemical Characteristics
| Technology | Temperature (°C) | Biochar Yield | Energy Output | Maturity Level | Key Limitations |
| Pyrolysis | 300-700 | High | Moderate | High | Product variability |
| Gasification | >700 | Low | High | Medium | Low biochar yield |
| HTC | 180-250 | Moderate | Low | Low | Limited data |
| Flash Carbonization | 300-600 | Moderate | Moderate | Low | Scale-up challenges |
2.2. Formation and Composition of PAHs in Biochar
2.3. Biochar Application in Salt-Affected Soils
| Category | Benefits | Detrimental effects |
| Physical | Increased water holding capacity and porosity | Limited water availability (clay soils) |
| Chemical | Enhanced cation exchange capacity and nutrient retention | PH unbalance and salinity |
| Biological | Increased microbial activity | Microbe disruption |
| Environmental | Carbon storage | Heavy metals, PAHs |
2.4. Biochar Performance vs. Environmental Safety
2.4.1. Effect of Feedstock on Biochar
2.4.2. Effect of Temperature on Biochar
2.4.2. Soil Type
2.5. Research Gaps and Needs
3. Conceptual Framework: Connecting Biochar Production, Contaminant Formation, and Soil Functionality
3.1. Production Conditions as the Primary Control
3.2. Physicochemical Properties Development of Biochar
3.3. Contaminant Formation and Deposition Mechanisms
3.4. Soils’ Functionality and Agronomic Performance
3.5. Trade-Offs and Optimization Strategies
| Aspect | Early Research (≤2011) | Recent Research (2015–2025) |
| Focus | Production & climate | Soil health & risks |
| Technology | Pyrolysis dominant | Engineered biochar |
| Benefits | Carbon sequestration | Multi-functional (remediation, soil) |
| Risks | Minimally discussed | Strongly emphasized |
| Data scale | Lab-based | Field + meta-analysis |
| Conclusion | Promising solution | Context-dependent tool |
3.7. Importance of Reactor Design and Process Engineering
3.8. Conclusion
Author Contributions
References
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| Authors | Year | Publication Tittle | Work conducted |
| Sebastian Meyer, Bruno Glaser & Peter Quicker |
2011 |
Technical, Economic, and Climate-Related Aspects of Biochar Production Technologies: A Literature Review |
Conducted an evaluation of different biochar production technologies, such as pyrolysis, gasification, hydrothermal carbonization, and flash carbonization, in addition to their economic and climate impact |
| P. R. Yaashikaa, P. Senthil Kumar, Sunita Varjani & A. Saravanan. | 2020 |
A critical review of the biochar production techniques, characterization, stability, and applications for the circular bioeconomy |
Assessed biochar production process and its application, as well as other attributes like physicochemical properties, stability, and environmental management. |
| Duo Wang, Peikun Jiang, Haibo Zhang & Wenqiao Yuan. | 2020 |
Biochar production and applications in agro and forestry systems: A review |
Conducted an evaluation of the biochar production process and its applications in agro and forestry systems. |
| James A. Ippolito et al. | 2020 | Feedstock choice, pyrolysis temperature, and type influence biochar characteristics: a comprehensive meta-data analysis review | Performed a meta-review on the effects of feedstock, pyrolysis temperature, and biochar production methods on the properties and behavior of biochar. |
| Xiaojiao Zhang et al. | 2022 | A critical review of the production, modification, and utilization of biochar | Explored the correlations between feedstock, biochar production parameters, biochar modification, and application in environmental remediation and agriculture. |
| Yize Li, Rohit Gupta, Qiaozhi Zhang & Siming You | 2022 | Review of Biochar Production via Crop Residue Pyrolysis: Development and Perspectives | Provided a review on biochar production using crop residues pyrolysis, factors affecting biochar yield and quality, and future trends. |
| Mahesh Ganesapillai et al. | 2023 | Waste to energy: A review of biochar production with emphasis on mathematical modeling and its applications | Reviewed the biochar production technologies, including mathematical modeling and optimization for waste-to-energy applications. |
| Sahan Safarian | 2023 | Performance analysis of sustainable technologies for biochar production: A comprehensive review | Conducted a review of sustainable biochar production technologies, reactors, operational conditions, and effects on biochar properties and uses |
| Vishal Rajput et al. | 2024 | Biochar production methods and their transformative potential for environmental remediation | Discussed the current biochar production process and its effectiveness in pollution prevention, sewage treatment, and environmental remediation. |
| EB Agyekun, C Nutakor | 2024 | Recent advancement in biochar production and utilization – A combination of traditional and bibliometric review | Performed a review by combining both bibliometric and traditional approaches to examine the latest developments, trends, and diverse applications of biochar technologies. |
| F Amalina et. al. | 2022 | Biochar production techniques utilizing biomass waste-derived materials and environmental applications – A review | Conducted a review of the biochar production process using biomass waste-derived feedstock and its environmental applications, including sewage treatment. |
| Topic | Gap | Needed |
| Field studies | Insufficient long-term data | Multi-year experiments |
| Standardization | Lack of standardized procedures | International standards |
| Toxicity | Thresholds for toxicants | Negative health effects |
| Scale-up | Small-scale lab studies | Industry-level verification |
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