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Adame, M.F., Santini, N.S., Tovilla, C., Vázquez-Lule, A., Castro, L., Guevara, M. 2015. Carbon stocks and soil sequestration rates of tropical riverine wetlands. Biogeosciences 12(12): 3805–3818.
Alongi, D.M. 2012. Carbon sequestration in mangrove forests. Carbon Management 3(3): 313–322.
Alongi, D.M. 2014. Carbon cycling and storage in mangrove forests. Annual Review of Marine Science 6(6): 195–219.
Alongi, D.M., Mukhopadhyay, S. K.2015. Contribution of mangroves to coastal carbon cycling in low-latitude seas. Agricultural and Forest Meteorology 213: 266–272.
Ashrafuzzaman, M. 2025. Mangroves as a cornerstone of nature-based solutions for global climate resilience. In: Handbook of Nature-Based Solutions to Mitigation and Adaptation to Climate Change. Nagy, G.J., Ayal, D.Y. (Eds.), Springer, Cham. pp. 1071–1099.
Bader, C., Müller, M., Schulin, R., Leifeld, J., 2018. Peat decomposability in managed organic soils in relation to land use, organic matter composition and temperature. Biogeosciences 15: 703–719.
Bennett, J.D., Chambers, L., 2023. Wetland soil carbon storage exceeds uplands in an urban natural area (Florida, USA). Soil Research 61(6): 542–559.
Breithaupt, J.L., Steinmuller, H.E., Rovai, A.S., Engelbert, K.M., Smoak, J.M., Chambers, L.G., Radabaugh, K.R., Moyer, R.P., Chappel, A., Vaughn, D.R., Bianchi, T.S., Twilley, R.R., Pagliosa, P., Cifuentes-Jara, M., Torres, D., 2023. An improved framework for estimating organic carbon content of mangrove soils using loss-on-ignition and coastal environmental setting. Wetlands 43: 57.
Bresilla, B., Demelezi, F., Szegi, T., Gjinovci, G., Xhemali, B., Havolli, V., Mehmeti, S., 2023. Spatial distribution of soil organic carbon content in the agricultural land uses: Case study at the territory of the Rahoveci municipality, Kosovo. Eurasian Journal of Soil Science 12(3): 205–214.
Carnell, P.E., Windecker, S.M., Brenker, M., Baldock, J., Masque, P., Brunt, K., Macreadie, P.I., 2018. Carbon stocks, sequestration, and emissions of wetlands in south-eastern Australia. Global Change Biology 24(9): 4173–4184.
Castillo, J., MacKenzie, R. 2022. Monitoring the sediment surface elevation change across a chronosequence of restored stands of tropical mangroves and their contemporary carbon sequestration in soil pool. Forests 13(2): 241.
Chaikaew, P., Chavanich, S. 2017. Spatial variability and relationship of mangrove soil organic matter to organic carbon. Applied and Environmental Soil Science Article ID 4010381.
Charles, S.P., Kominoski, J.S., Armitage, A.R., Guo, H., Weaver, C.A., Pennings, S.C., 2020. Quantifying how changing mangrove cover affects ecosystem carbon storage in coastal wetlands. Ecology 101(2): e02916.
Dayathilake, D.D.T.L., Lokupitiya, E., Wijeratne, V.P.I.S., 2021. Estimation of soil carbon stocks of urban freshwater wetlands in the colombo ramsar wetland city and their potential role in climate change mitigation. Wetlands 41: 29.
De Feudis, M., Falsone, G., Vianello, G., Agnelli, A., Vittori Antisari, L., 2022. Soil organic carbon stock assessment in forest ecosystems through pedogenic horizons and fixed depth layers sampling: What's the best one? Land Degradation and Development 33(9): 1446–1458.
Deliansyah, M.F., Wiyanto, D.B., Indrawan, G.S., 2025. Analysis of tourism suitability and carrying capacity of Mangrove Areas in Sumberkima Village, Buleleng Regency, Bali. Advances in Tropical Biodiversity and Environmental Sciences 9(2): 124–134.
Dettmann, U., Frank, S., Wittnebel, M., Piayda, A., Tiemeyer, B., 2022. How to take volume-based peat samples down to mineral soil? Geoderma 427: 116132.
Dharmawan, I.W.E., 2021. Mangrove health index distribution on the restored post-tsunami mangrove area in Biak Island, Indonesia. IOP Conference Series: Earth and Environmental Science 860: 012007.
Donato, D. C., Kauffman, J. B., Murdiyarso, D., Kurnianto, S., Stidham, M., Kanninen, M., 2011. Mangroves among the most carbon-rich forests in the tropics. Nature Geoscience 4(5): 293-297.
Esperschütz, J., Lense, O. N., Anderson, C., Bulman, S., Horswell, J., Dickinson, N., Robinson, B., 2016. Biowaste mixtures affecting the growth and elemental composition of Italian ryegrass (Lolium multiflorum). Journal of Environmental Quality 45(3): 1054–1061.
Ezcurra, P., Ezcurra, E., Garcillán, P.P., Costa, M.T., Aburto-Oropeza, O., 2016. Coastal landforms and accumulation of mangrove peat increase carbon sequestration and storage. Proceedings of the National Academy of Sciences U.S.A. 113(16): 4404–4409.
Fest, B.J., Swearer, S.E., Arndt, S.K., 2022. A review of sediment carbon sampling methods in mangroves and their broader impacts on stock estimates for blue carbon ecosystems. Science of The Total Environment 816: 151618.
Frouz, J., 2018. Effects of soil macro-and mesofauna on litter decomposition and soil organic matter stabilization. Geoderma 332: 161–172.
Gómez, J.A., Guzmán, G., Toloza, A., Resch, C., García-Ruíz, R., Mabit, L., 2020. Variation of soil organic carbon, stable isotopes, and soil quality indicators across an erosion–deposition catena in a historical Spanish olive orchard. Soil 6: 179-194.
Gong, J., Liu, W., Li, W., Cui, L. 2025. Sediment organic carbon dynamics and accumulation in estuarine mangrove wetlands. Catena 259: 109317.
Gross, C.D., Harrison, R.B., 2018. Quantifying and comparing soil carbon stocks: underestimation with the core sampling method. Soil Science Society American Journal 82: 949–959.
Han, Y., Wang, Q., Wang, Q., Li, F., Guo, Y., Shen, S., Luo, G., Zheng, Y., 2023. Carbon distribution characteristics and sequestration potential of various land-use types in a stony soil zone of the arid mountainous regions on the eastern Tibetan Plateau. Sustainability 15(20): 14721.
Hinshaw, S., Wohl, E., Burnett, J.L., Wondzell, S.M., 2022. Development of a geomorphic monitoring strategy for stage 0 restoration in the South Fork McKenzie River, Oregon, USA. Earth Surface Processes and Landforms 47: 1937–1951.
Hoogsteen, M.J., Lantinga, E.A., Bakker, E.J., Groot, J.C., Tittonell, P.A., 2015. Estimating soil organic carbon through loss on ignition: effects of ignition conditions and structural water loss. European Journal of Soil Science 66(2): 320–328.
Jariyapong, M., Roongtawanreongsri, S., Somboonsuke, B. 2023. Estimating the economic value of carbon sequestration by Sago Palm (Metroxylon sagu Rottb.). International Journal of Design & Nature and Ecodynamics 18: 1159–1167.
Kauffman, J.B., Adame, M.F., Arifanti, V.B., Schile-Beers, L.M., Bernardino, A.F., Bhomia, R.K., Donato, D.C., Feller, I.C., Ferreira, T.O., Jesus Garcia, M.D.C., MacKenzie, R.A., Megonigal, J.P., Murdiyarso, D., Simpson, L., Trejo, H.H., 2020. Total ecosystem carbon stocks of mangroves across broad global environmental and physical gradients. Ecological Monographs 90(2): e01405.
Kauffman, J.B., Bhomia, R.K., 2017. Ecosystem carbon stocks of mangroves across broad environmental gradients in West-Central Africa: Global and regional comparisons. PloS ONE 12(11): e0187749.
Kurnianto, S., Selker, J., Boone Kauffman, J., Murdiyarso, D., Peterson, J.T., 2019. The influence of land-cover changes on the variability of saturated hydraulic conductivity in tropical peatlands. Mitigation and Adaptation Strategies for Global Change 24(4): 535–555.
Lal, R., 2016. Soil health and carbon management. Food and Energy Security 5(4): 212–222.
Lane, R.R., Mack, S.K., Day, J.W., DeLaune, R.D., Madison, M.J., Precht, P.R., 2016. Fate of soil organic carbon during wetland loss. Wetlands 36(6): 1167–1181.
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Abstract
Wetland ecosystems are important natural carbon sinks, yet data on soil organic carbon (SOC) in eastern Indonesian wetlands are limited. This study quantified SOC stocks and their vertical distribution in mangrove and sago wetland forests in Southwest Papua, Indonesia. Using a nested sampling design, soil cores were collected from 11 mangrove sites to a depth of 300 cm and from 11 sago forest sites to a depth of 50 cm. SOC content was determined by using the loss-on-ignition method and combined with bulk density to estimate SOC stocks by depth. Across the full soil profile, mangrove stored more SOC (mean 702.38 Mg C ha⁻¹) than sago forests (average 338.74 Mg C ha⁻¹), mainly because of their deeper organic soil layers. In both ecosystems, SOC declined with depth, but deeper soil layers still contributed substantially to total carbon stock in mangroves. Regression analysis showed that SOC stock decreased with depth, while higher canopy cover corresponded to greater SOC stocks. These findings show that sampling depth strongly affects cross-ecosystem comparisons and confirm that Southwest Papua’s wetland forests are significant carbon stores. The study provides baseline data for an understudied region, supporting the conservation of mangrove and sago wetlands for climate regulation and carbon sequestration.
Keywords: Soil organic carbon, mangrove ecosystems, sago wetlands, blue carbon, tropical wetland soils.
References
Adame, M.F., Santini, N.S., Tovilla, C., Vázquez-Lule, A., Castro, L., Guevara, M. 2015. Carbon stocks and soil sequestration rates of tropical riverine wetlands. Biogeosciences 12(12): 3805–3818.
Alongi, D.M. 2012. Carbon sequestration in mangrove forests. Carbon Management 3(3): 313–322.
Alongi, D.M. 2014. Carbon cycling and storage in mangrove forests. Annual Review of Marine Science 6(6): 195–219.
Alongi, D.M., Mukhopadhyay, S. K.2015. Contribution of mangroves to coastal carbon cycling in low-latitude seas. Agricultural and Forest Meteorology 213: 266–272.
Ashrafuzzaman, M. 2025. Mangroves as a cornerstone of nature-based solutions for global climate resilience. In: Handbook of Nature-Based Solutions to Mitigation and Adaptation to Climate Change. Nagy, G.J., Ayal, D.Y. (Eds.), Springer, Cham. pp. 1071–1099.
Bader, C., Müller, M., Schulin, R., Leifeld, J., 2018. Peat decomposability in managed organic soils in relation to land use, organic matter composition and temperature. Biogeosciences 15: 703–719.
Bennett, J.D., Chambers, L., 2023. Wetland soil carbon storage exceeds uplands in an urban natural area (Florida, USA). Soil Research 61(6): 542–559.
Breithaupt, J.L., Steinmuller, H.E., Rovai, A.S., Engelbert, K.M., Smoak, J.M., Chambers, L.G., Radabaugh, K.R., Moyer, R.P., Chappel, A., Vaughn, D.R., Bianchi, T.S., Twilley, R.R., Pagliosa, P., Cifuentes-Jara, M., Torres, D., 2023. An improved framework for estimating organic carbon content of mangrove soils using loss-on-ignition and coastal environmental setting. Wetlands 43: 57.
Bresilla, B., Demelezi, F., Szegi, T., Gjinovci, G., Xhemali, B., Havolli, V., Mehmeti, S., 2023. Spatial distribution of soil organic carbon content in the agricultural land uses: Case study at the territory of the Rahoveci municipality, Kosovo. Eurasian Journal of Soil Science 12(3): 205–214.
Carnell, P.E., Windecker, S.M., Brenker, M., Baldock, J., Masque, P., Brunt, K., Macreadie, P.I., 2018. Carbon stocks, sequestration, and emissions of wetlands in south-eastern Australia. Global Change Biology 24(9): 4173–4184.
Castillo, J., MacKenzie, R. 2022. Monitoring the sediment surface elevation change across a chronosequence of restored stands of tropical mangroves and their contemporary carbon sequestration in soil pool. Forests 13(2): 241.
Chaikaew, P., Chavanich, S. 2017. Spatial variability and relationship of mangrove soil organic matter to organic carbon. Applied and Environmental Soil Science Article ID 4010381.
Charles, S.P., Kominoski, J.S., Armitage, A.R., Guo, H., Weaver, C.A., Pennings, S.C., 2020. Quantifying how changing mangrove cover affects ecosystem carbon storage in coastal wetlands. Ecology 101(2): e02916.
Dayathilake, D.D.T.L., Lokupitiya, E., Wijeratne, V.P.I.S., 2021. Estimation of soil carbon stocks of urban freshwater wetlands in the colombo ramsar wetland city and their potential role in climate change mitigation. Wetlands 41: 29.
De Feudis, M., Falsone, G., Vianello, G., Agnelli, A., Vittori Antisari, L., 2022. Soil organic carbon stock assessment in forest ecosystems through pedogenic horizons and fixed depth layers sampling: What's the best one? Land Degradation and Development 33(9): 1446–1458.
Deliansyah, M.F., Wiyanto, D.B., Indrawan, G.S., 2025. Analysis of tourism suitability and carrying capacity of Mangrove Areas in Sumberkima Village, Buleleng Regency, Bali. Advances in Tropical Biodiversity and Environmental Sciences 9(2): 124–134.
Dettmann, U., Frank, S., Wittnebel, M., Piayda, A., Tiemeyer, B., 2022. How to take volume-based peat samples down to mineral soil? Geoderma 427: 116132.
Dharmawan, I.W.E., 2021. Mangrove health index distribution on the restored post-tsunami mangrove area in Biak Island, Indonesia. IOP Conference Series: Earth and Environmental Science 860: 012007.
Donato, D. C., Kauffman, J. B., Murdiyarso, D., Kurnianto, S., Stidham, M., Kanninen, M., 2011. Mangroves among the most carbon-rich forests in the tropics. Nature Geoscience 4(5): 293-297.
Esperschütz, J., Lense, O. N., Anderson, C., Bulman, S., Horswell, J., Dickinson, N., Robinson, B., 2016. Biowaste mixtures affecting the growth and elemental composition of Italian ryegrass (Lolium multiflorum). Journal of Environmental Quality 45(3): 1054–1061.
Ezcurra, P., Ezcurra, E., Garcillán, P.P., Costa, M.T., Aburto-Oropeza, O., 2016. Coastal landforms and accumulation of mangrove peat increase carbon sequestration and storage. Proceedings of the National Academy of Sciences U.S.A. 113(16): 4404–4409.
Fest, B.J., Swearer, S.E., Arndt, S.K., 2022. A review of sediment carbon sampling methods in mangroves and their broader impacts on stock estimates for blue carbon ecosystems. Science of The Total Environment 816: 151618.
Frouz, J., 2018. Effects of soil macro-and mesofauna on litter decomposition and soil organic matter stabilization. Geoderma 332: 161–172.
Gómez, J.A., Guzmán, G., Toloza, A., Resch, C., García-Ruíz, R., Mabit, L., 2020. Variation of soil organic carbon, stable isotopes, and soil quality indicators across an erosion–deposition catena in a historical Spanish olive orchard. Soil 6: 179-194.
Gong, J., Liu, W., Li, W., Cui, L. 2025. Sediment organic carbon dynamics and accumulation in estuarine mangrove wetlands. Catena 259: 109317.
Gross, C.D., Harrison, R.B., 2018. Quantifying and comparing soil carbon stocks: underestimation with the core sampling method. Soil Science Society American Journal 82: 949–959.
Han, Y., Wang, Q., Wang, Q., Li, F., Guo, Y., Shen, S., Luo, G., Zheng, Y., 2023. Carbon distribution characteristics and sequestration potential of various land-use types in a stony soil zone of the arid mountainous regions on the eastern Tibetan Plateau. Sustainability 15(20): 14721.
Hinshaw, S., Wohl, E., Burnett, J.L., Wondzell, S.M., 2022. Development of a geomorphic monitoring strategy for stage 0 restoration in the South Fork McKenzie River, Oregon, USA. Earth Surface Processes and Landforms 47: 1937–1951.
Hoogsteen, M.J., Lantinga, E.A., Bakker, E.J., Groot, J.C., Tittonell, P.A., 2015. Estimating soil organic carbon through loss on ignition: effects of ignition conditions and structural water loss. European Journal of Soil Science 66(2): 320–328.
Jariyapong, M., Roongtawanreongsri, S., Somboonsuke, B. 2023. Estimating the economic value of carbon sequestration by Sago Palm (Metroxylon sagu Rottb.). International Journal of Design & Nature and Ecodynamics 18: 1159–1167.
Kauffman, J.B., Adame, M.F., Arifanti, V.B., Schile-Beers, L.M., Bernardino, A.F., Bhomia, R.K., Donato, D.C., Feller, I.C., Ferreira, T.O., Jesus Garcia, M.D.C., MacKenzie, R.A., Megonigal, J.P., Murdiyarso, D., Simpson, L., Trejo, H.H., 2020. Total ecosystem carbon stocks of mangroves across broad global environmental and physical gradients. Ecological Monographs 90(2): e01405.
Kauffman, J.B., Bhomia, R.K., 2017. Ecosystem carbon stocks of mangroves across broad environmental gradients in West-Central Africa: Global and regional comparisons. PloS ONE 12(11): e0187749.
Kurnianto, S., Selker, J., Boone Kauffman, J., Murdiyarso, D., Peterson, J.T., 2019. The influence of land-cover changes on the variability of saturated hydraulic conductivity in tropical peatlands. Mitigation and Adaptation Strategies for Global Change 24(4): 535–555.
Lal, R., 2016. Soil health and carbon management. Food and Energy Security 5(4): 212–222.
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