A Critical-Systematic Review of the Interactions of Biochar with Soils and the Observable Outcomes
Abstract
:1. Introduction
2. Data Collection and Synthesis
3. Biochar
3.1. Background
3.2. Biochar Production Conditions and Selected Physicochemical Properties
3.3. Preparing Designer Biochar
4. Biochar Modifies Soil Physicochemical Properties
4.1. The Effect of Biochar on Soil Hydraulic Properties and Water Holding Capacity
4.2. Impact of Biochar on Soil pH, Cation Exchange Capacity (CEC), and pH Buffering Capacity (pHBC)
4.3. Impact of Biochar on Soil Exchangeable Properties
4.4. Impact of Biochar on Soil Zeta Potential
5. The Influence of Biochar on Soil Aggregation
5.1. The Role of Biochar in Soil Aggregate Formation
5.2. The Effect of Biochar on Soil Aggregate Stability
6. Effect of Biochar Application on Soil Biological Properties
7. Implications of Biochar Interactions with Soils for Agricultural Productivity
7.1. Management of Acid Soils
7.2. Management of Alkaline Soils
7.3. Management of Saline Soils
7.4. Management of Polluted Soils
7.5. Mitigation of Greenhouse Gas Emission
7.6. Guidelines for Biochar Application
7.7. Ecotoxicology and Negative Effects of Biochar
8. Conclusions and Future Research Directions
- (a)
- The need for technological maturity: Long-term studies are required to understand the future of the currently applied biochar. Few studies have attempted to examine the future role of biochar using artificial conditions. However, real field conditions may differ and thus, the need for long-term field studies.
- (b)
- Accreditation of biochar: Given thousands of studies reporting diverse results, it is difficult for practitioners to use biochar and, if so, determine which of the types to use. Therefore, an international body can be formed to accredit the quality of biochar. A generalized guideline can be prepared for preparing, testing, and applying biochars for achieving a target, while equal importance needs to be paid for the long-term effects of biochar because the role of currently applied biochar may be reversed in the future.
- (c)
- Biochar-based composites: Development and application of biochar-based composite and fertilizers can be one of the new dimensions of biochar research since there is a higher chance of obtaining biochar-nutrient/contaminants interactions than their direct application to soils. However, detailed studies are required before advocating any large-scale application.
- (d)
- Cost-effective biochar production: Research is needed to tailor technologies that can help to produce biochar at a low cost. One of the big challenges is that many large biochar production companies are struggling to sustain their business. Efforts are to be made to harvest all possible benefits, including recycling energy. Moreover, obtaining a sustainable source of biomass is needed. The use of waste biomass (municipal waste) can be an option for that. However, suitable technologies are required for handling diverse biomass.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Panel A: n = 171 | ||||
---|---|---|---|---|
Parameter | Mean | Minimum | Maximum | SD |
Pyrolysis temperature (°C) | 484.07 | 100 | 900 | 171 |
pH | 8.84 | 3.3 | 12.4 | 1.86 |
Yield (%) | 41.09 | 21.6 | 99.9 | 17.26 |
Ash (%) | 16.99 | 0.1 | 81.7 | 18.70 |
Surface area (m2/g) | 94.33 | 0.76 | 907.4 | 158 |
C (%) | 62.22 | 7.9 | 94.2 | 19.43 |
H (%) | 3.06 | 0.3 | 25.1 | 2.46 |
O (%) | 17.69 | 1 | 59 | 11.49 |
N (%) | 1.39 | 0.06 | 16.6 | 1.35 |
Panel B: n = 33 | ||||
Pyrolysis temperature (°C) | 419 | 300 | 700 | 123 |
pH | 9.25 | 6.42 | 11.32 | 1.45 |
Alkalinity (cmol+ kg−1) | 199.1 | 79.8 | 326.1 | 76.3 |
CEC (cmol+ kg−1) | 159.5 | 15 | 304 | 67.4 |
Functional groups (cmol kg−1) | ||||
Phenolic | 99.61 | 26 | 160 | 44.1 |
Lactonic | 34.18 | 15.6 | 51 | 9.19 |
Carboxylic | 19.86 | 1.1 | 63.5 | 21.5 |
Sum of exchangeable base cations (cmolc kg−1) | 221.1 | 70.8 | 524 | 115 |
Panel A: n = 71 | ||||
---|---|---|---|---|
Parameter | Mean | Minimum | Maximum | SD |
Pyrolysis temperature (°C) | 368 | 300 | 400 | 27.6 |
Soil pH | 5.61 | 3.99 | 8.40 | 1.06 |
∆pH due to biochar | 1.12 | 0.01 | 3.44 | 0.79 |
CEC (mmol kg−1) | 91.5 | 51.5 | 177.2 | 27.3 |
% increase in CEC due to biochar | 18.6 | −17.2 | 82.8 | 21.0 |
pHBC (mmol kg−1 pH−1) | 26.0 | 12.0 | 41.7 | 7.60 |
% increase in pHBC due to biochar | 52.0 | 1.02 | 198.5 | 45.0 |
Panel B: n = 54 | ||||
Soil pH | 4.81 | 3.99 | 5.97 | 0.44 |
∆pH due to biochar | 0.57 | 0.01 | 1.53 | 0.37 |
Exchangeable acidity (mmol+ kg−1) | 30.9 | 0.9 | 70.2 | 17.2 |
% decrease in exchangeable acidity due to biochar | 49.2 | 8.57 | 96.6 | 24.5 |
Exchangeable Al (mmol+ kg−1) | 29.2 | 0.9 | 67.7 | 16.7 |
% decrease in exchangeable Al due to biochar | 48.5 | 0.7 | 96.5 | 25.1 |
Exchangeable base cations (mmol+ kg−1) | 64.8 | 8.8 | 118.6 | 25.7 |
% increase in exchangeable base cations due to biochar | 95.0 | 16.2 | 243.5 | 57.3 |
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Nkoh, J.N.; Baquy, M.A.-A.; Mia, S.; Shi, R.; Kamran, M.A.; Mehmood, K.; Xu, R. A Critical-Systematic Review of the Interactions of Biochar with Soils and the Observable Outcomes. Sustainability 2021, 13, 13726. https://doi.org/10.3390/su132413726
Nkoh JN, Baquy MA-A, Mia S, Shi R, Kamran MA, Mehmood K, Xu R. A Critical-Systematic Review of the Interactions of Biochar with Soils and the Observable Outcomes. Sustainability. 2021; 13(24):13726. https://doi.org/10.3390/su132413726
Chicago/Turabian StyleNkoh, Jackson Nkoh, M. Abdulaha-Al Baquy, Shamim Mia, Renyong Shi, Muhammad Aqeel Kamran, Khalid Mehmood, and Renkou Xu. 2021. "A Critical-Systematic Review of the Interactions of Biochar with Soils and the Observable Outcomes" Sustainability 13, no. 24: 13726. https://doi.org/10.3390/su132413726