Arsenio D. Bulfa Jr.

Silliman University College of Agriculture, Bantayan, Dumaguete City Negros Oriental 6200, Philippines

Jose Edwin C. Cubelo

Silliman University College of Agriculture, Bantayan, Dumaguete City Negros Oriental 6200, Philippines

DOI: https://doi.org/10.14456/apst.2025.67

Keywords: composts CO2 emission amendment carbon sequestration biomass wastes


Abstract

Composts from biomass wastes are a source of plant nutrients and help improve soil quality. An experiment laid out in a split-plot in a completely randomized design was conducted to determine the chemical properties of composts produced from the decomposition of biomass wastes mixtures such as poultry manure + rice straw (PMRS) and poultry manure + carbonized rice hull (PMCRH) with different C:N ratios and their application effects on corn growth, soil chemical properties, earthworm behavior, and CO2 emissions. Results show that the chemical properties of composts were relatively high; however, increasing the C:N ratio led to reductions in pH, organic carbon (OC), total P, total K, and total NPK. Compost application significantly enhanced corn growth and improved soil chemical properties. Root weight, root length and plant height were significantly increased in both PMRS and PMCRH-treated soils. No significant avoidance behavior was observed among earthworms in compost-treated soils indicating suitability for soil fauna. In the incubation setup, a significant amount of CO2 was captured in the soil treated with PMCRH. The application of both compost types is recommended as it improved soil health, enhanced plant growth, and was safe for soil organisms. PMCRH compost application is a potential carbon capture and storage strategy that may help reduce CO2 emissions. This approach supports a sustainable food production system with net carbon sequestration and provides an optimal, localized, and environmentally sustainable biomass waste management solution.


How to Cite

Bulfa Jr., A. D., & C. Cubelo, J. E. . Carbon Dioxide (CO2) emissions and ecological effects of biomass composts . Asia-Pacific Journal of Science and Technology30(05), APST–30. https://doi.org/10.14456/apst.2025.67


References

Eleria K, Vargas D. Farmers’ Extent of Awareness in Rice Straw Proper Disposal and Utlization in Farming Production Activities. SSRN Electron J. 2021; 1:12-13.

Corrales-Ureña YR, Villalobos-Bermúdez C, Pereira R, Camacho M, Estrada E, Argüello-Miranda O, et al. Biogenic silica-based microparticles obtained as a sub-product of the nanocellulose extraction process from pineapple peels. Sci Rep. 2018; 10:8(1):104-117.

Neri Jr AC, Baguhin IA, Cabahug RR. An investigation on the compressive strength of concrete with rice husk ash as cement replacement and addition of chemical admixtures. Mindanao J Sci Technol. 2023;21(1):224-236.

Rehman SU, De Castro F, Aprile A, Benedetti M, Fanizzi FP. Vermicompost: Enhancing plant growth and combating abiotic and biotic stress. Agronomy. 2023:16;13(4):11-34.

Bulfa Jr AD, Cubelo JEC. Chemical properties and recovery of vermicompost from mixed shredded leaves and poultry manure using Eudrilus eugeniae under different loading schemes. Silliman J. 2022;63(1):2024-2034.

Ayangbenro AS, Chukwuneme CF, Ayilara MS, Kutu FR, Khantsi M, Adeleke BS, et al. Harnessing the rhizosphere soil microbiome of organically amended soil for plant productivity. Agronomy. 2022; 15;12(12):31-79.

Araujo JHR, Pando-Bahuon A, Hartmann C, Aroui-Boukbida H, Desjardins T, Lerch TZ. Making Green(s) With Black and White: Constructing soils for urban agriculture using earthworms, organic and mineral wastes. Front Ecol Evol. 2022; 18:10:884134.

Ahmed N, Al-Mutairi KA. Earthworms effect on microbial population and soil fertility as well as their interaction with agriculture practices. Sustainability. 2022; 27:14(13):7803.

Kamboj N, Kumar A, Kamboj V, Bisht A, Pandey N, Bharti M. Role of earthworm biodiversity in soil fertility and crop productivity improvement. Biol Divers Curr Status Conserv Policies. 2021; 65:230–241.

Ajrd B, Chuang F, Cubelo J, Alvarado MC. Enhancing the chemical properties and recovery rates of organic fertilizer through Carbon-to-Nitrogen (C/N) ratio manipulations of biomass wastes. In: International Exchange and Innovation Conference on Engineering & Sciences (IEICES). 2024; 10:2024-2034.

OECD. Test No. 208: Terrestrial Plant Test: Seedling Emergence and Seedling Growth Test. OECD; 2006. (OECD Guidelines for the Testing of Chemicals, Section 2).

Sánchez A, Artola A, Font X, Gea T, Barrena R, Gabriel D, Mondini C. Greenhouse gas emissions from organic waste composting. Environ Chem Lett. 2015; 13:223-238.

Bulfa A, Villegas-Pangga G, Cubelo JE. Corn-cob Biochar characterization and application effects to Carbon Dioxide (CO₂) evolution in acid soil added with different types of fertilizers. Philipp J Sci. 2021;150(5):40-45.

Piper CS. Soil and plant analysis. Scientific Publishers. 2019.

Jackson ML. Soil Chemical Analysis. Englewood Cliffs, NJ: Prentice Hall, Inc. 1958; 46–47.

Bray RH, Kurtz LT. Determination of total, organic, and available forms of phosphorus in soils. Soil Sci. 1945; 59(1):39–46.

Peech M. Determination of Exchangeable Cations and Exchange Capacity of Soils—Rapid micromethods utilizing centrifuge and spectrophotometer. Soil Sci. 1945; 59(1): 5-10.

Black CA, editor. Methods of Soil Analysis: Part 1 physical and mineralogical properties, including statistics of measurement and sampling. Madison, WI, USA: American society of agronomy, Soil Science Society of America; 1965 [cited 2025 Feb 10]. (Agronomy Monographs).

Walkley A. A Critical examination of a rapid method for determining organic carbon in soils effect of variations in digestion conditions and of inorganic soil constituents. Soil Sci. 1947;63(4):251-264.

Bray RH, Kurtz LT. Determination of total, organic, and available forms of phosphorus in soils. Soil Sci. 1945;59(1):39–46.

Buladaco MS, Navarro DAG, Sanchez PB, Medina SM. Ecotoxicological effects of chromium (VI) on seedling growth, soil nitrification and earthworm behavior. J Int Soc Southeast Asian Agric Sci. 2020;26(2):106-122.

Singh M, Sarkar B, Sarkar S, Churchman J, Bolan N, Mandal S, Stabilization of soil organic carbon as influenced by clay mineralogy. In: Advances in Agronomy. Elsevier. 2018; 11:33–84.

Grewling T, Peech M. 1960. Chemical soil tests. Cornell University Agricultural Experimentation Station. Bulletin. 1960; 96: 34–36.

Richard T, Trautmann N. C/N Ratio. Cornell Composting, Science and Engineering. Cornell University Ithaca NY Cornell. WMI. 1996; 3:30-50.

Song Z, Gao H, Zhu P, Peng C, Deng A, Zheng C, et al. Organic amendments increase corn yield by enhancing soil resilience to climate change. Crop J. 2015;3(2):110–117.

Macias-Corral MA, Cueto-Wong JA, Morán-Martínez J, Reynoso-Cuevas L. Effect of different initial C/N ratio of cow manure and straw on microbial quality of compost. Int J Recycl Org Waste Agric. 2019;8(S1): 357–365.

Yang H, Zhang H, Qiu H, Anning DK, Li M, Wang Y, et al. Effects of C/N ratio on lignocellulose degradation and enzyme activities in aerobic composting. Horticulturae. 2021; 10;7(11): 40-82.

Chen X, Chen Y, Zhang W, Zhang W, Wang H, Zhou Q. Response characteristics of root to moisture change at seedling stage of Kengyilia hirsuta. Front Plant Sci. 2023 ;6;13:1052-1791.

Alarefee HA, Ishak CF, Othman R, Karam DS. Effectiveness of mixing poultry litter compost with rice husk biochar in mitigating ammonia volatilization and carbon dioxide emission. J Environ Manage. 2023; 329:117-151.

Abang S, Janaun J, Anisuzzaman SM, Ikhwan FS. Development of carbon dioxide adsorbent from rice husk char. IOP Conf Ser Earth Environ Sci. 2016; 36:12-22.