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Kavil, Sarath Pullyottum
Publications (3 of 3) Show all publications
Wang, Y., Kavil, S. P. & Gallego-Sala, A. V. (2026). Unprecedented Burning in Tropical Peatlands During the 20th Century Compared to the Previous Two Millennia. Global Change Biology, 32(3), Article ID e70717.
Open this publication in new window or tab >>Unprecedented Burning in Tropical Peatlands During the 20th Century Compared to the Previous Two Millennia
2026 (English)In: Global Change Biology, ISSN 1354-1013, E-ISSN 1365-2486, Vol. 32, no 3, article id e70717Article in journal (Refereed) Published
Abstract [en]

Tropical peatland wildfire incidence has risen in recent decades, driven by drainage for land use and intensified by severe droughts with global climate change. These disturbances have altered vegetation structure, disrupted ecosystem functioning, and increased carbon emissions, particularly in Southeast Asia. However, the long-term history and characteristics of wildfires in tropical peatlands remain largely unknown. Here, we compiled fifty-eight macro-charcoal records from peatlands across the tropics, ranging from lowland forested to montane peatlands, to assess millennia-scale changes and controlling factors of tropical peatland burning. We divided the datasets into four main sub-regions: Neotropical, Afrotropical, Indomalayan and Australasian ecoregions to explore regional variability. Tropical peatlands had high burning levels between 0 and 850 ce, followed by a relatively low and stable period until a marked increase during the 20th century. The general trend in tropical peatland burning follows changes in global temperature, and climate variables that control the length and severity of drought events have a notable influence on peat burning before 1900 ce. During the 20th century, regional differences were observed, with declining fire trends in the Neotropical and Afrotropical regions and increasing fire trends in the Indomalayan and Australasian regions. This difference is likely attributable to human activities, and such intervention is also evident in palm swamps and hardwood swamps under similar wet, weakly seasonal climates. With the increase in anthropogenic pressures on peatlands and greater climate variability, future wildfires in peatlands are likely to become more frequent and widespread across all tropical ecoregions. Conservation and sustainable land-use practices could be used to mitigate and control peatland burning and protect these carbon-rich sinks.

Keywords
charcoal, contemporary fire, last two millennia, palaeoenvironment, paleofire, tropical peatland
National Category
Environmental Sciences Climate Science
Identifiers
urn:nbn:se:su:diva-253898 (URN)10.1111/gcb.70717 (DOI)001720411500001 ()2-s2.0-105032919283 (Scopus ID)
Available from: 2026-04-01 Created: 2026-04-01 Last updated: 2026-04-01Bibliographically approved
Kavil, S. P., Riotte, J., Chakrabarti, R., Sarma, V. V., Kumar, B. S., Prunier, J., . . . Cardinal, D. (2025). Heterogenous Si Isotopic Composition in Coastal Groundwater: Controls on Dissolved Silicon and Groundwater Discharge Along Indian Coastline. Global Biogeochemical Cycles, 39(8), Article ID e2025GB008706.
Open this publication in new window or tab >>Heterogenous Si Isotopic Composition in Coastal Groundwater: Controls on Dissolved Silicon and Groundwater Discharge Along Indian Coastline
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2025 (English)In: Global Biogeochemical Cycles, ISSN 0886-6236, E-ISSN 1944-9224, Vol. 39, no 8, article id e2025GB008706Article in journal (Refereed) Published
Abstract [en]

We report stable silicon isotope ratio (δ30Si) of over 80 groundwater samples collected along the Indian coast, spanning a wide range of aquifer lithologies (alluvial, basalt, metamorphic, laterite and limestone), climate (semi-arid to tropical wet) and land use settings. Indian coastal groundwater exhibits large spatial variability in dissolved silicon (DSi) (80–1350 μM) and δ30Si values (−1.1‰ to 4.5‰). On average, the δ30Si value of the Indian coastal groundwater (0.8 ± 1.1‰, 1SD, n = 85) is comparable to published groundwater globally (0.8 ± 0.8‰, n = 117), and significantly lower than Indian riverine δ30Si composition. The coastal groundwater δ30Si values do not show any dependence on regional aquifer lithology. However, the permeable coastal alluvial groundwaters exhibit the highest variability in DSi and δ30Si, likely acquiring signatures of shallow surface/subsurface processes through mixing. A broad negative correlation between δ30Si values and the Ge/Si ratio is best explained by the partitioning of Si into secondary minerals phases within the weathering zone. The majority of coastal groundwater follows a steady-state model evolution, indicating a dynamic equilibrium between Si supply and the formation of secondary phases. In regions of low annual rainfall, groundwater irrigation can lead to infiltration of return flow water to aquifer systems, leading to their heavy δ30Si values. The fresh submarine groundwater discharge along the Indian coast is estimated to be 2.1 GmolSi yr−1, which is less than 1% of the riverine Si flux to the North Indian Ocean and 0.3% of the global fresh groundwater Si flux.

Keywords
dissolved silicon, groundwater, silicon isotopes, subamrine groundwater discharge, weathering
National Category
Geochemistry
Identifiers
urn:nbn:se:su:diva-246821 (URN)10.1029/2025GB008706 (DOI)001559343400001 ()2-s2.0-105013989670 (Scopus ID)
Available from: 2025-09-15 Created: 2025-09-15 Last updated: 2025-09-15Bibliographically approved
Kavil, S. P., Riotte, J., Chakrabarti, R., Dapoigny, A., Vaury, V., Ruiz, L. & Cardinal, D. (2024). Deep regolith weathering controls δ30Si composition of groundwater under contrasting landuse in tropical watersheds. Chemical Geology, 670, Article ID 122370.
Open this publication in new window or tab >>Deep regolith weathering controls δ30Si composition of groundwater under contrasting landuse in tropical watersheds
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2024 (English)In: Chemical Geology, ISSN 0009-2541, E-ISSN 1872-6836, Vol. 670, article id 122370Article in journal (Refereed) Published
Abstract [en]

Land use changes are known to alter terrestrial silicon cycling and the export of dissolved silicon from soil to fluvial systems, but the impact of such changes on groundwater systems remain unclear. In order to identify the processes responsible for groundwater geochemistry and to assess the impact of agricultural processes, we examined multiple isotopic tracers (δ30Si, oxygen (δ18O) and hydrogen (δ2H) isotopes) in groundwater, soil porewater and surface water from two contrasted watersheds having the same gneissic lithology, one forested (Mule Hole) and one intensely cultivated (Berambadi) in the Kabini basin in South India. In the cultivated watershed, groundwater exhibits high Cl− and NO3− concentrations indicative of fertilizer inputs and solute enrichment from evapotranspiration due to multiple groundwater pumping/recharge cycles. The DSi concentration in groundwater is significantly higher in the cultivated watershed (980 ± 313 μM) than in the forested one (711 ± 154 μM), indicating more intense evapotranspiration due to irrigation cycles. The groundwater δ30Si values ranged from 0.6 ‰ to 3.4 ‰ and exhibit no significant differences between cultivated (1.2 ± 0.5 ‰) and forested (1.0 ± 0.2 ‰) watersheds, indicating limited impact of land use and land cover. Groundwater also shows no significant seasonal differences in DSi and δ30Si within watersheds, indicating a buffer to seasonal recharge during wet season. The δ30Si of a majority of groundwater samples fits a steady-state open flow through system, with an isotopic fractionation factor (30ε) between precipitating phase and groundwater ranging from −1.0 ‰ and − 2.0 ‰, consistent with precipitation of kaolinite-type clays, dominant in the study area. The steady-state flow through system in groundwater can be interpreted as a continuous DSi input from mineral weathering reactions with a dynamic equilibrium between Si supply and precipitation of secondary phases. We also observe, in both watersheds, similar DSi and δ30Si values in local surface water that includes small streams and a river (406 ± 194 μM, 1.6 ± 0.3 ‰) and in soil porewater (514 ± 119 μM, 1.6 ± 0.2 ‰). Compared to soil porewater, groundwater exhibits significantly lower δ30Si signatures and higher DSi, reflecting the contribution of an isotopically light silicon source, resulting from water-rock interaction during percolation through the unsaturated zone. We assign this steady input of DSi to the weathering of primary silicate minerals in the regolith, such as Na-plagioclase, biotite and chlorite, with formation of kaolinite and smectites type clays. A simple isotopic mass balance suggests that deep regolith weathering can contribute to almost half of the DSi in groundwater. We conclude that silicon cycling in soil porewaters, and surface waters are directly impacted by land use, while the isotopic composition of groundwater remains unaffected. Our results indicate that Si isotopic signatures of weathering, adsorption, and plant uptake occurring in the shallow soil and saprolite horizons are partly overprinted and homogenized by the regolith weathering in the deep critical zone, irrespective of land use and seasonality.

Keywords
Agriculture, Critical zone, Forest, Groundwater, Silicon cycle, Weathering
National Category
Oceanography, Hydrology and Water Resources
Identifiers
urn:nbn:se:su:diva-236900 (URN)10.1016/j.chemgeo.2024.122370 (DOI)001327780100001 ()2-s2.0-85204936011 (Scopus ID)
Available from: 2024-12-09 Created: 2024-12-09 Last updated: 2024-12-09Bibliographically approved
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