Skip to content
Conference Open access

Effect of water management and application of soil amendment biochar on growth and yield of rice (Oryza sativa L.) on peat soil

Jun 2026 · IOP Conference Series: Earth and Environment · Vol 1641, pp. 012003 · 0 citations · 32 references
Physics

Abstract

Increased food production has become a global urgency due to population growth and limited productive land. Efficient use of resources, particularly water, and optimization of marginal land such as peat soil are important strategies in sustainable agricultural production. This study introduces a novel combination of water depth management and biochar application to improve rice growth and yield on peat soils, an approach that has been rarely explored. The study was conducted using a Randomized Block Design with a 4 × 4 factorial pattern consisting of two factors. The first factor was water depth with four levels: 0, 3, 6, and 9 cm. The second factor was biochar dose with four levels: 0, 4, 6, and 8 tons ha−1. The results showed that water level did not significantly affect rice plant growth and yield. However, biochar dose treatment significantly affected plant height growth and plant productivity. The control treatment (without biochar) produced a yield of 1.47 ton ha−1, which falls within the typical range of rice yields on peat soils (1.1-1.9 tons ha−1). Application of 6 tons ha−1 of biochar increased yield by 1.12 tons ha−1 compared to the control, representing an improvement of approximately 76%. These findings indicate that the combination of water depth management and biochar application effectively improves rice productivity on peat soils. This study contributes new insights to peatland rice management by recommending a water depth of 0 cm combined with 6 tons ha−1 of biochar as an effective and sustainable strategy to enhance rice yield.

Read PDF

Similar papers

Open access Aug 2026

Modeling and Biochar Soil Amendments to Optimize Water-Use Efficiency and Yield in Arid Valencia Orange Orchards

This study explores the sustainable optimization of Valencia orange production in Egypt's arid regions by analyzing the dual effects of deficit irrigation and biochar soil conditioning. Multi-season field experiments demonstrated that Partial Root-zone Drying (PRD) combined with 1200 kg ha⁻¹ of biochar significantly enhances the vegetative growth, physiological traits, and final yield components of Valencia orange trees in degraded sandy soils. Severe water restriction (50% Full Irrigation [FI]) constrained canopy development and chlorophyll formation. In contrast, the PRD strategy produced superior growth responses, achieving an increased canopy volume of 4.1–4.3%, an expanded leaf area of 27.0–28.3 cm², and total chlorophyll levels up to 3.0 mg g⁻¹ F.W. The application of biochar showed a significant, dose-dependent improvement in soil water-holding capacity and nutrient retention. Under the optimal interaction treatment (PRD combined with 1200 kg ha⁻¹ biochar), the trees achieved peak agronomic performance. This synergistic combination maximized canopy volume increase to 5.5–5.8%, expanded leaf area to 37.9–40.1 cm², and elevated chlorophyll content to 3.7–4.0 mg g⁻¹ F.W. Furthermore, this treatment upgraded fruit development and quality indices; fruit weight reached 231.4–240.6 g, total yield peaked at 48.5–50 ton ha⁻¹, TSS reached 13.7–14.2%, and Vitamin C maximized at 48.8–51.3 mg 100 mL⁻¹ juice, confirming that biochar effectively mitigates drought stress. Complementing these findings, the treatments were simulated using the SALTMED model software to evaluate its predictive fidelity under local Egyptian conditions. The software demonstrated exceptional accuracy, establishing a robust correlation between field-collected data and model-generated values. This alignment was statistically validated by an outstanding coefficient of determination (R² ranging from 96% to 98%). Consequently, the study strongly recommends utilizing SALTMED for managing fruit crops in Egypt to save time, labor, and costs, while providing reliable predictive data to optimize export and import operations for vital commodities like citrus.

Unknown authors · 0 citations
Open access Jul 2026

Enhancing fertilizer use efficiency in Mentha spicata L. through biochar-based integration with NPK in sandy soils

Sandy soils are widely distributed in Egypt and are characterized by poor physical properties and a limited capacity to retain irrigation water and nutrients, which severely constrains agricultural productivity. Addressing these limitations has become increasingly critical to ensure sustainable crop production under arid and semi-arid conditions. Therefore, this study aimed to evaluate the effectiveness of biochar as a soil amendment for improving growth performance, yield, nutrient accumulation, photosynthetic pigments, and essential oil production of Mentha spicata cultivated under sandy soil conditions over two successive seasons (2024–2025). The field experiment consisted of four treatments: untreated control, NPK at 5 g L-1, biochar at 12.5 ton ha-1, and combined NPK (5 g L-1) and biochar (12.5 ton ha-1). The results showed that biochar application, either alone or in combination with mineral fertilizer, significantly improved all vegetative growth parameters, fresh and dry herbage yields, essential oil percentage and yield, leaf macronutrient content (N, P, and K), and chlorophyll b concentration. Biochar applied alone consistently outperformed mineral fertilizer alone, while the combined biochar–NPK treatment produced the highest values for all measured traits, with improvements exceeding the additive effects of individual applications. These enhancements were closely associated with increased nutrient accumulation and improved nutrient use efficiency, reflecting the ability of biochar to retain nutrients, reduce leaching losses, and synchronize nutrient availability with plant demand. The synergistic interaction between biochar and mineral fertilization highlights the potential of biochar as a sustainable soil amendment for improving productivity, quality, and resource-use efficiency of mint grown in low-fertility sandy soils.

Y. Soliman, W. Soliman · 0 citations
Open access Jul 2026

Comparative Effects of Maize Cob Biochar and Inorganic Fertilizer on Soil Properties and Maize Productivity

Declining soil fertility is a major constraint to sustainable crop production in sub-Saharan Africa, and sole reliance on inorganic fertilizers raises concerns about long-term soil health. This study evaluated the effects of maize cob biochar and NPK fertilizer, applied individually and in combination, on soil properties, growth, and yield of maize ( Zea mays L.) in Akure, Nigeria. The experiment was conducted using a randomized complete block design with three replicates. Treatments included control, biochar (1.5 and 3.0 t/ha), NPK fertilizer (100 and 200 kg/ha), and a combined application of 1.5 t/ha biochar with 100 kg/ha fertilizer. Growth parameters measured included plant height, leaf area index, internode length, and stem girth, while yield indices and post-harvest soil chemical properties were also assessed. Results showed that all treatments significantly improved maize performance compared to the control. Biochar alone produced the highest growth values and yield components, including cob weight (375.12 g), number of seeds per cob (707.80), and seed weight per cob (203.53 g), compared to the control (161.50 g, 104.73, and 37.49 g, respectively). The combined treatment also recorded high values (313.52 g, 670.50, and 169.94 g). Biochar improved soil properties, increasing organic carbon (0.89%) and organic matter (1.52%) relative to the control (0.69% and 0.19%), while fertilizer enhanced available phosphorus (5.39 cmol/kg). The study concludes that integrating maize cob biochar with inorganic fertilizer is an effective and sustainable strategy for improving soil fertility and maize productivity.

O. Nwafor, A. Johnson, Akinbuwa Olumakinde et al. · 0 citations
Open access Jul 2026

Can Fertilization Methods and Soil Management Affect Operational Efficiency and CO2 Emissions from Fuel Consumption in Bean Cultivation?

The common bean (Phaseolus vulgaris L.) is an important food crop in tropical agriculture. However, fertilization and soil management methods for common beans require further investigation to reduce production costs and increase sustainability. Furthermore, cultivation methods can directly affect GHG emissions. Thus, this study evaluates the CO2 emissions from fuel consumption as a function of soil management and fertilization methods on the common bean crop. The randomized block design was used in a 2 × 3 factorial scheme with six repetitions composed of two fertilization systems (spread and furrow) and three soil management systems: convention-al tillage—CT, minimum tillage—MT, and no-tillage—NT. The productive performance of common beans varies according to fertilization methods and soil management. Field capacity in the (CT) was impaired due to the various mechanized soil preparation operations with 0.30 and 0.32 ha h−1, without a significant effect from the fertilization method. CT system resulted in higher CO2 emissions of 175.74 kg ha−1 and 165.50 kg ha−1; thus, in soil conservation management, these same values were up to 58% lower, with the lowest rates for NT. Crop yield in the MT system presented the best result compared to the CT and NT, with an appropriate cost–benefit ratio for bean production in tropical crops.

A. C. Marques Filho, Weverton Caetano Nunes, C. E. S. Volpato et al. · 0 citations
Jul 2026

Effects of Integrated Acid Soil Management Approach on Soil Properties, Barley Yield and Yield Components in the Southern Highlands of Ethiopia

ABSTRACT Soil acidity is a major constraint to barley production in the Southern Highlands of Ethiopia. An on-farm experiment was conducted during the 2020 and 2021 cropping seasons on strongly acidic Nitisols (pH 4.7) to evaluate the effects of integrated application of vermicompost (VC), inorganic nitrogen (N), and lime on soil chemical properties and barley productivity. Nine treatments, comprising a control, sole and combined applications of VC and N at different proportions, and integrated treatments with lime (3 t ha−1), were arranged in a randomized complete block design with three replications. Integrated application of VC, N, and lime significantly increased soil pH, available phosphorus, soil organic carbon, and total nitrogen while reducing exchangeable acidity compared with the control and sole nutrient applications. Grain yield and yield components were also significantly improved in both cropping seasons. The combined application of 50% VC + 50% N + 3 t ha−1 lime produced the greatest improvements in soil fertility and barley yield, indicating synergistic effects of integrating organic, inorganic, and liming materials for acidic soil management. The integrated application of 100 kg urea + 100 kg NPSB + 5 t vermicompost ha⁻¹ is recommended for farmers seeking to maximize barley productivity and overall profitability because it generated the highest grain yield and net benefit. However, for resource-constrained farmers with limited capital, the sole application of 100 kg urea ha⁻¹ is a practical alternative because it produced the highest marginal rate of return, indicating greater economic efficiency per unit of additional investment. Improved soil fertility and grain yield in the second cropping season demonstrated residual benefits of the integrated treatments. Overall, integrated use of vermicompost, nitrogen fertilizer, and lime was more effective than sole nutrient applications in improving soil fertility and sustaining barley production on acidic Nitisols.

Getahun Haile, M. Lemenih, G. Agegnehu · 0 citations
Jul 2026

Co-application of biochar and silicon fertilizer enhances rice nutrient allocation, soil fertility, and mitigates ARG dissemination in paddy soil.

The restoration of soils contaminated by antibiotic resistance genes (ARGs) is essential for agricultural safety and human health. Although biochar and silicon (Si) fertilizer have been commonly applied individually as amendments for soil remediation and rice quality improvement, their combined effects remain unclear. Here, we systematically assessed the effects of the integrated application of biochar and Si fertilizer on rice nutrient uptake, soil properties, bacterial community structure and functions, and ARG abundance by conducting a 120-day pot experiment with four treatments: control (CK), 0.15 t ha-1 of Si fertilizer (SF), 3 t ha-1 of biochar (BC), and their combination (SC). The results showed that the combined treatment enhanced rice panicle length and promoted the translocation of Si and potassium to leaves, while altering the distribution of nitrogen and phosphorus in rice. In soil, co-application did not markedly alter pH, SOM, or most available nutrient levels, but significantly increased TN and TP contents. Moreover, the SC treatment resulted in the lowest abundances of detected ARGs and MGEs among all treatments. It also reshaped the bacterial community composition and functional profiles, including reduced abundance or functional contribution of key r-strategist genera associated with ARGs and nitrogen/phosphorus metabolism, such as Dinghuibacter and Roseomonas. Overall, the co-application of biochar and Si fertilizer improved rice nutrient supply, enhanced soil nutrient status, and mitigated the dissemination of ARGs. These findings provide a scientific basis for sustainable paddy field production and ARG risk management in paddy ecosystems.

Mei Wang, Shuai Li, Hongwei Xu et al. · 0 citations