Soil CO2 flux of rewetted small-scale agricultural peatlands in West Kalimantan, Indonesia
Abstract
Indonesia hosts one of the largest tropical peatlands and several parts of which have been converted for agriculture, including small-scale systems. These practices have altered soil and ecological function, shifting their role from long-term carbon sinks into sources of carbon emissions. For years Indonesia employs rewetting as strategies for peatland restoration. This is implemented by constructing canal blocks to elevate the groundwater table (GWT), thereby mitigating carbon emissions. Furthermore, this study analyze soil CO₂ fluxes in rewetted small-scale agricultural peatlands, separating peat- and root-derived emissions to support emission factor refinement. The study conducted in four land uses—horticulture (HOR), rubber (RBB), oil palm (OPP), and secondary forest (DSF) in West Kalimantan, Indonesia. Soil CO₂ fluxes were measured using an Infrared Gas Analyzer with closed-chamber and devices to measured environmental factors. The result shows that the highest soil CO₂ flux was recorded in OPP, while the lowest was observed in DSF. Soil CO₂ flux in HOR, RBB, OPP, and DSF were 46.69, 44.46, 64.55, and 21.68 Mg CO₂ ha⁻¹ yr⁻¹, respectively. GWT was the feature importance influencing soil CO₂ flux in all sites except DSF, where the soil moisture was the feature importance. These findings indicate that the moisture regime plays a crucial role in regulating soil CO₂ flux. When compared with default emission factors from national (2nd FREL) and global systems (IPCC), these findings revealed varying result. These differences explain the complexity of peatlands and highlight the potential value in refining emission estimates, especially for small-scale agricultural systems.
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Agus, F., Handayani, E., Van Noordwijk, M., Idris, K., & Sabiham, S. (2010). Root respiration interferes with peat CO2 emission measurement. 19th world congress of soil science, Soil Solutions for a Changing World. https://www.old.iuss.org/19th%20WCSS/Symposium/pdf/0739.pdf
Anda, M., Ritung, S., Suryani, E., Sukarman, Hikmat, M., Yatno, E.,…Husnain. (2021). Revisiting tropical peatlands in Indonesia: Semi-detailed mapping, extent and depth distribution assessment. Geoderma, 402, 115235. https://doi.org/10.1016/j.geoderma.2021.115235
Baird, A. J., Low, R., Young, D., Swindles, G. T., Lopez, O. R., & Page, S. (2017). High permeability explains the vulnerability of the carbon store in drained tropical peatlands. Geophysical Research Letters, 44(3), 1333-1339. https://doi.org/10.1002/2016GL072245
Basuki, I., Kauffman, J. B., Peterson, J. T., Anshari, G. Z., & Murdiyarso, D. (2021). Land Cover and Land Use Change Decreases Net Ecosystem Production in Tropical Peatlands of West Kalimantan, Indonesia. Forests, 12(11), 1587. https://doi.org/10.3390/f12111587
Budiharto, M., Krisnawati, H., Manuri, S., Purwanto, J., Asaad, I., Nurhayati, & Gunawan, W. (2022). National forest reference level for deforestation, forest degradation and enhancement of forest carbon stock. Republic of Indonesia. https://redd.unfccc.int/files/modified_2nd_frl_indonesia_20220529_clean.pdf
Carlson, K. M., Goodman, L. K., & May-Tobin, C. C. (2015). Modeling relationships between water table depth and peat soil carbon loss in Southeast Asian plantations. Environmental Research Letters, 10(7), 074006. https://doi.org/10.1088/1748-9326/10/7/074006
Cobb, A. R., Dommain, R., Tan, F., Hwee En Heng, N., & Harvey, C. F. (2020). Carbon storage capacity of tropical peatlands in natural and artificial drainage networks. Environmental Research Letters, 15(11), 114009. https://doi.org/10.1088/1748-9326/aba867
Cobb, A. R., & Harvey, C. F. (2019). Scalar simulation and parameterization of water table dynamics in tropical peatlands. Water Resources Research, 55(11), 9351-9377. https://doi.org/10.1029/2019WR025411
Comeau, L.-P., Hergoualc'h, K., & Verchot, L. V. (2021). Dataset on soil carbon dioxide fluxes from an incubation with tropical peat from three different land-uses in Jambi Sumatra Indonesia. Data in Brief, 39, 107597. https://doi.org/10.1016/j.dib.2021.107597
Dargie, G. C., Lewis, S. L., Lawson, I. T., Mitchard, E. T. A., Page, S. E., Bocko, Y. E., & Ifo, S. A. (2017). Age, extent and carbon storage of the central Congo Basin peatland complex. Nature, 542(7639), 86-90. https://doi.org/10.1038/nature21048
Dariah, A., Marwanto, S., & Agus, F. (2014). Root- and peat-based CO2 emissions from oil palm plantations. Mitigation and Adaptation Strategies for Global Change, 19(6), 831-843. https://doi.org/10.1007/s11027-013-9515-6
Darusman, T., Murdiyarso, D., Impron, I., Chaniago, I. A., & Lestari, D. P. (2022). Carbon Dynamics in Rewetted Tropical Peat Swamp Forests. Climate, 10(3), 35. https://doi.org/10.3390/cli10030035
Dohong, A. (2017). Bolstering Peatlands restoration in Indonesia through 3Rs approach. Proceedings of developing international collaborations to address fire and other conservation issues in Central Kalimantan. Indonesia Workshop, Penryn. https://doi.org/10.13140/RG.2.2.33080.19200
Dohong, A., Abdul Aziz, A., & Dargusch, P. (2018). A Review of Techniques for Effective Tropical Peatland Restoration. Wetlands, 38(2), 275-292. https://doi.org/10.1007/s13157-018-1017-6
Evans, C. D., Williamson, J. M., Kacaribu, F., Irawan, D., Suardiwerianto, Y., Hidayat, M. F.,…Page, S. E. (2019). Rates and spatial variability of peat subsidence in Acacia plantation and forest landscapes in Sumatra, Indonesia. Geoderma, 338, 410-421. https://doi.org/10.1016/j.geoderma.2018.12.028
Evers, S., Yule, C. M., Padfield, R., O'Reilly, P., & Varkkey, H. (2017). Keep wetlands wet: the myth of sustainable development of tropical peatlands–implications for policies and management. Global Change Biology, 23(2), 534-549. https://doi.org/10.1111/gcb.13422
Eviati, Sulaeman, Herawaty, L., Anggria, L., Usman, Tantika, H. E.,…Wuningrum, P. (2023). Petunjuk Teknis Analisis Kimia Tanah, Tanaman, Air dan Pupuk. Balai Pengujian Standar Instrumen Tanah dan Pupuk, Kementerian Pertanian Republik Indonesia. https://repository.pertanian.go.id/handle/123456789/24650
Giesen, W., Wijedasa, L., & Page, S. (2018). Unique Southeast Asian peat swamp forest habitats have relatively few distinctive plant species. Mires and Peat, 22, 01. https://doi.org/10.19189/MaP.2017.OMB.287
Girkin, N. T., Siegenthaler, A., Lopez, O., Stott, A., Ostle, N., Gauci, V., & Sjögersten, S. (2025). Plant root carbon inputs drive methane production in tropical peatlands. Scientific Reports, 15(1), 3244. https://doi.org/10.1038/s41598-025-87467-w
Graham, L. L., Giesen, W., & Page, S. E. (2017). A common‐sense approach to tropical peat swamp forest restoration in Southeast Asia. Restoration ecology, 25(2), 312-321. https://doi.org/10.1111/rec.12465
Grand-Clement, E., Anderson, K., Smith, D., Angus, M., Luscombe, D. J., Gatis, N.,…Brazier, R. E. (2015). New approaches to the restoration of shallow marginal peatlands. Journal of Environmental Management, 161, 417-430. https://doi.org/10.1016/j.jenvman.2015.06.023
He, H., & Roulet, N. T. (2023). Improved estimates of carbon dioxide emissions from drained peatlands support a reduction in emission factor. Communications Earth & Environment, 4(1), 436. https://doi.org/10.1038/s43247-023-01091-y
Hiraishi, T., Krug, T., Tanabe, K., Srivastava, N., Jamsranjav, B., Fukuda, M., & Troxler, T. (2014). 2013 Revised supplementary methods and good practice guidance arising from the Kyoto Protocol. Intergovernmental Panel on Climate Change Switzerland. https://www.ipcc.ch/site/assets/uploads/2018/03/KP_Supplement_Entire_Report.pdf
Hooijer, A., Page, S., Jauhiainen, J., Lee, W., Lu, X., Idris, A., & Anshari, G. (2012). Subsidence and carbon loss in drained tropical peatlands. Biogeosciences, 9(3), 1053-1071. https://doi.org/10.5194/bg-9-1053-2012
Hooijer, A., Vernimmen, R., Mulyadi, D., Triantomo, V., Hamdani, Lampela, M.,…Swarup, S. (2024). Benefits of tropical peatland rewetting for subsidence reduction and forest regrowth: results from a large-scale restoration trial. Scientific Reports, 14(1), 10721. https://doi.org/10.1038/s41598-024-60462-3
Husen, E., Salma, S., & Agus, F. (2014). Peat emission control by groundwater management and soil amendments: evidence from laboratory experiments. Mitigation and Adaptation Strategies for Global Change, 19(6), 821-829. https://doi.org/10.1007/s11027-013-9526-3
Ishikura, K., Hirano, T., Okimoto, Y., Hirata, R., Kiew, F., Melling, L.,…Ishii, Y. (2018). Soil carbon dioxide emissions due to oxidative peat decomposition in an oil palm plantation on tropical peat. Agriculture, Ecosystems & Environment, 254, 202-212. https://doi.org/10.1016/j.agee.2017.11.025
Jamaludin, J., Gusmayanti, E., & Anshari, G. Z. (2020). Emisi Karbon Dioksida (CO2) dari Pertanian Skala Kecil di Lahan Gambut. Jurnal Ilmu Lingkungan, 18(3), 7. https://doi.org/10.14710/jil.18.3.582-588
Jamili, M. J., Nugroho, B., Sumawinata, B., & Anwar, S. (2021). Dynamics of CO2 fluxes from oil palm plantations on peatland. Jurnal Pengelolaan Sumberdaya Alam dan Lingkungan (Journal of Natural Resources and Environmental Management), 11(3), 430-441. https://doi.org/10.29244/jpsl.11.3.430-441
Jovani‐Sancho, A. J., O'Reilly, P., Anshari, G., Chong, X. Y., Crout, N., Evans, C. D.,…Gusmayanti, E. (2023). CH4 and N2O emissions from smallholder agricultural systems on tropical peatlands in Southeast Asia. Global Change Biology, 29(15), 4279-4297. https://doi.org/10.1111/gcb.16747
Khasanah, N. m., & van Noordwijk, M. (2019). Subsidence and carbon dioxide emissions in a smallholder peatland mosaic in Sumatra, Indonesia. Mitigation and Adaptation Strategies for Global Change, 24(1), 147-163. https://doi.org/10.1007/s11027-018-9803-2
Kurnianto, S., Warren, M., Talbot, J., Kauffman, B., Murdiyarso, D., & Frolking, S. (2015). Carbon accumulation of tropical peatlands over millennia: a modeling approach. Global Change Biology, 21(1), 431-444. https://doi.org/10.1111/gcb.12672
Lestari, I., Murdiyarso, D., & Taufik, M. (2022). Rewetting Tropical Peatlands Reduced Net Greenhouse Gas Emissions in Riau Province, Indonesia. Forests, 13(4), 505. https://doi.org/10.3390/f13040505
Madsen, R., Xu, L., Claassen, B., & McDermitt, D. (2009). Surface Monitoring Method for Carbon Capture and Storage Projects. Energy Procedia, 1(1), 2161-2168. https://doi.org/10.1016/j.egypro.2009.01.281
Mahardika, R. Y., Anshari, G. Z., & Suryadi, U. E. (2024). CO2 emissions of tropical peat soils under controlled groundwater table depths: A laboratory-based experiment. Journal of Degraded and Mining Lands Management, 11(4), 6135-6141. https://doi.org/10.15243/jdmlm.2024.114.6135
Mahardika, R. Y., Fadilla, U., Azizu, M. N., & Siregar, H. H. (2026). Groundwater controls on soil–environment variables and carbon risk in smallholder peatland agriculture of West Kalimantan, Indonesia. Journal of Degraded and Mining Lands Management, 13(2), 9773-9785. https://doi.org/10.15243/jdmlm.2026.132.9773
Mahardika, R. Y., Tarigan, S. D., Baskoro, D. P. T., Lovita, V., Gangga, A., Asyhari, A.,…Ravelle, A. P. (2024). Hydrological function of rewetted peatlands linked to saturated hydraulic conductivity in Kubu Raya, West Kalimantan, Indonesia. Journal of Degraded and Mining Lands Management, 11(3), 5717-5725. https://doi.org/10.15243/jdmlm.2024.113.5717
Marwanto, S., & Agus, F. (2014). Is CO2 flux from oil palm plantations on peatland controlled by soil moisture and/or soil and air temperatures? Mitigation and Adaptation Strategies for Global Change, 19(6), 809-819. https://doi.org/10.1007/s11027-013-9518-3
Matysek, M., Evers, S., Samuel, M. K., & Sjogersten, S. (2018). High heterotrophic CO2 emissions from a Malaysian oil palm plantation during dry-season. Wetlands Ecology and Management, 26(3), 415-424. https://doi.org/10.1007/s11273-017-9583-6
Medrilzam, M., Smith, C., Aziz, A. A., Herbohn, J., & Dargusch, P. (2017). Smallholder Farmers and the Dynamics of Degradation of Peatland Ecosystems in Central Kalimantan, Indonesia. Ecological Economics, 136, 101-113. https://doi.org/10.1016/j.ecolecon.2017.02.017
Miettinen, J., Shi, C., & Liew, S. C. (2016). Land cover distribution in the peatlands of Peninsular Malaysia, Sumatra and Borneo in 2015 with changes since 1990. Global Ecology and Conservation, 6, 67-78. https://doi.org/10.1016/j.gecco.2016.02.004
Murdiyarso, D., Lilleskov, E., & Kolka, R. (2019). Tropical peatlands under siege: the need for evidence-based policies and strategies. Mitigation and Adaptation Strategies for Global Change, 24(4), 493-505. https://doi.org/10.1007/s11027-019-9844-1
Murdiyarso, D., Swails, E., Hergoualc’h, K., Bhomia, R., & Sasmito, S. D. (2024). Refining greenhouse gas emission factors for Indonesian peatlands and mangroves to meet ambitious climate targets. Proceedings of the National Academy of Sciences, 121(17), e2307219121. https://doi.org/10.1073/pnas.2307219121
Negassa, W., Acksel, A., Eckhardt, K.-U., Regier, T., & Leinweber, P. (2019). Soil organic matter characteristics in drained and rewetted peatlands of northern Germany: Chemical and spectroscopic analyses. Geoderma, 353, 468-481. https://doi.org/10.1016/j.geoderma.2019.07.002
Novita, N., Asyhari, A., Ritonga, R. P., Gangga, A., Anshari, G. Z., Jupesta, J.,…Sianipar, V. C. (2024). Strong climate mitigation potential of rewetting oil palm plantations on tropical peatlands. Science of The Total Environment, 952, 175829. https://doi.org/10.1016/j.scitotenv.2024.175829
Page, S. E., & Baird, A. J. (2016). Peatlands and Global Change: Response and Resilience. Annual Review of Environment and Resources, 41(Volume 41, 2016), 35-57. https://doi.org/10.1146/annurev-environ-110615-085520
Sinclair, A. L., Graham, L., & Grover, S. P. (2024). More field-based carbon monitoring of tropical peatland restoration is urgently needed: Findings from a systematic literature review. Mires and Peat, 30, 1-23. https://doi.org/10.19189/MaP.2023.OMB.Sc.2123013
Sinclair, A. L., Graham, L. L. B., Putra, E. I., Saharjo, B. H., Applegate, G., Grover, S. P., & Cochrane, M. A. (2020). Effects of distance from canal and degradation history on peat bulk density in a degraded tropical peatland. Science of The Total Environment, 699, 134199. https://doi.org/10.1016/j.scitotenv.2019.134199
Sjögersten, S., Aplin, P., Gauci, V., Peacock, M., Siegenthaler, A., & Turner, B. L. (2018). Temperature response of ex-situ greenhouse gas emissions from tropical peatlands: Interactions between forest type and peat moisture conditions. Geoderma, 324, 47-55. https://doi.org/10.1016/j.geoderma.2018.02.029
Taufik, M., Veldhuizen, A. A., Wösten, J. H. M., & van Lanen, H. A. J. (2019). Exploration of the importance of physical properties of Indonesian peatlands to assess critical groundwater table depths, associated drought and fire hazard. Geoderma, 347, 160-169. https://doi.org/10.1016/j.geoderma.2019.04.001
Thornton, S., Page, S., Upton, C., & Harrison, M. (2018). Peatland fish of Sebangau, Borneo: diversity, monitoring and conservation. Mires and Peat, 22, 04. https://doi.org/10.19189/MaP.2017.OMB.313
Wardhana, B. (2016). BRG’s roadmap for Peatland restoration. Proceedings of CBD & FAO workshop: Forest ecosystem restoration. Peatland restoration agency (BRG), Bangkok. https://www.cbd.int/doc/meetings/ecr/ecrws-2016-02/other/ecrws-2016-02-presentation-day1-03-en.pdf
Warren, M., Hergoualc’h, K., Kauffman, J. B., Murdiyarso, D., & Kolka, R. (2017). An appraisal of Indonesia’s immense peat carbon stock using national peatland maps: uncertainties and potential losses from conversion. Carbon Balance and Management, 12(1), 12. https://doi.org/10.1186/s13021-017-0080-2
Widiarso, B., Minardi, S., Komariah, K., Chandra, T. O., Elmahdi, M. A., & Senge, M. (2020). Predicting peatland groundwater table and soil moisture dynamics affected by drainage level. Sains Tanah Journal of Soil Science and Agroclimatology, 17(1), 8. https://doi.org/10.20961/stjssa.v17i1.38459
Zhong, Y., Jiang, M., & Middleton, B. A. (2020). Effects of water level alteration on carbon cycling in peatlands. Ecosystem Health and Sustainability, 6(1), 1806113. https://doi.org/10.1080/20964129.2020.1806113
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