Soil-Dependent Effects of Rice Husk Biochar on N2O Emissions from Compost-Amended Agricultural Soils

This study tested whether the N2O response to increasing rates of the same rice husk biochar differed between two chicken compost-amended agricultural soils. A clay loam paddy soil and a loam vegetable soil were amended with 2% (w/w) chicken compost and 0, 0.5, 1.0, or 1.5% (w/w) rice husk biochar, then incubated without plants in a small-scale laboratory experiment at 30 °C and 60% water-holding capacity for 28 days. Soil pH, electrical conductivity, NH4+-N, NO3−-N, and N2O emissions were monitored. At 1.0% biochar, cumulative N2O emissions decreased from 4.4 to 2.5 mg N kg−1 in the clay loam soil and from 6.8 to 3.8 mg N kg−1 in the loam soil, reductions of approximately 43% and 44%, respectively. Increasing the rate to 1.5% provided no additional mitigation in the loam soil and substantially weakened mitigation in the clay loam soil. Soil, biochar rate, and their interaction significantly affected cumulative emissions (p < 0.001). Thus, the biochar rate-response was not uniform between the two soils tested.

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Publication Details

Journal
Soil Systems
Published
2026-09-30
DOI
https://doi.org/10.3390/soilsystems10100110
Primary Topic
Soil Carbon and Nitrogen Dynamics
Type
article
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article

Soil-Dependent Effects of Rice Husk Biochar on N2O Emissions from Compost-Amended Agricultural Soils

Hitoshi Shinjo, Tung Gia Pham, Huu Ty Pham, Tran Thi Minh Chau et al.
Soil Systems
Soil Carbon and Nitrogen Dynamics
article

Soil-Dependent Effects of Rice Husk Biochar on N2O Emissions from Compost-Amended Agricultural Soils

Hitoshi Shinjo, Tung Gia Pham, Huu Ty Pham, Tran Thi Minh Chau, Tran Thanh Duc
article en

Abstract

This study tested whether the N2O response to increasing rates of the same rice husk biochar differed between two chicken compost-amended agricultural soils. A clay loam paddy soil and a loam vegetable soil were amended with 2% (w/w) chicken compost and 0, 0.5, 1.0, or 1.5% (w/w) rice husk biochar, then incubated without plants in a small-scale laboratory experiment at 30 °C and 60% water-holding capacity for 28 days. Soil pH, electrical conductivity, NH4+-N, NO3−-N, and N2O emissions were monitored. At 1.0% biochar, cumulative N2O emissions decreased from 4.4 to 2.5 mg N kg−1 in the clay loam soil and from 6.8 to 3.8 mg N kg−1 in the loam soil, reductions of approximately 43% and 44%, respectively. Increasing the rate to 1.5% provided no additional mitigation in the loam soil and substantially weakened mitigation in the clay loam soil. Soil, biochar rate, and their interaction significantly affected cumulative emissions (p < 0.001). Thus, the biochar rate-response was not uniform between the two soils tested.

Soil SystemsVol. 10(10)
Kyoto University (JP), Hue University (VN), Hue University of Agriculture and Forestry (VN), Hue University of Education (VN)
Openalex Percentile: Top 14%
Soil Carbon and Nitrogen Dynamics
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