[1]

Islam MR, Jönsson AM, Bergkvist J, Lagergren F, Lindeskog M, et al. 2024. Projected effects of climate change and forest management on carbon fluxes and biomass of a boreal forest. Agricultural and Forest Meteorology 349:109959

doi: 10.1016/j.agrformet.2024.109959
[2]

Pan Y, Birdsey RA, Fang J, Houghton R, Kauppi PE, et al. 2011. A large and persistent carbon sink in the world's forests. Science 333(6045):988−993

doi: 10.1126/science.1201609
[3]

Gommet C, Lauerwald R, Ciais P, Guenet B, Zhang H, et al. 2022. Spatiotemporal patterns and drivers of terrestrial dissolved organic carbon (DOC) leaching into the European river network. Earth System Dynamics 13(1):393−418

doi: 10.5194/esd-13-393-2022
[4]

Camino-Serrano M, Gielen B, Luyssaert S, Ciais P, Vicca S, et al. 2014. Linking variability in soil solution dissolved organic carbon to climate, soil type, and vegetation type. Global Biogeochemical Cycles 28(5):497−509

doi: 10.1002/2013GB004726
[5]

Panchal P, Preece C, Peñuelas J, Giri J. 2022. Soil carbon sequestration by root exudates. Trends in Plant Science 27(8):749−757

doi: 10.1016/j.tplants.2022.04.009
[6]

Turetsky MR, Abbott BW, Jones MC, Walter Anthony K, Olefeldt D, et al. 2019. Permafrost collapse is accelerating carbon release. Nature 569(7754):32−34

doi: 10.1038/d41586-019-01313-4
[7]

Drake TW, Raymond PA, Spencer RGM. 2018. Terrestrial carbon inputs to inland waters: a current synthesis of estimates and uncertainty. Limnology and Oceanography Letters 3(3):132−142

doi: 10.1002/lol2.10055
[8]

Öquist MG, Bishop K, Grelle A, Klemedtsson L, Köhler SJ, et al. 2014. The full annual carbon balance of boreal forests is highly sensitive to precipitation. Environmental Science & Technology Letters 1(7):315−319

doi: 10.1021/ez500169j
[9]

Liu D, Chang R, Zhao H, Wang T, Yang Y, et al. 2025. Underestimated carbon losses as dissolved organic carbon in forested headwater streams. Global Biogeochemical Cycles 39(12):e2025GB008684

doi: 10.1029/2025gb008684
[10]

Jonsson A, Algesten G, Bergström AK, Bishop K, Sobek S, et al. 2007. Integrating aquatic carbon fluxes in a boreal catchment carbon budget. Journal of Hydrology 334(1−2):141−150

doi: 10.1016/j.jhydrol.2006.10.003
[11]

Talbot CJ, Bolster D, Medvigy D, Jones SE. 2022. A terrestrial-aquatic model reveals cross-scale interactions regulate lateral dissolved organic carbon transport from terrestrial ecosystems. Journal of Geophysical Research: Biogeosciences 127(5):e2021JG006604

doi: 10.1029/2021JG006604
[12]

McFarlane KJ, Throckmorton HM, Heikoop JM, Newman BD, Hedgpeth AL, et al. 2022. Age and chemistry of dissolved organic carbon reveal enhanced leaching of ancient labile carbon at the permafrost thaw zone. Biogeosciences 19(4):1211−1223

doi: 10.5194/bg-19-1211-2022
[13]

Marx A, Dusek J, Jankovec J, Sanda M, Vogel T, et al. 2017. A review of CO2 and associated carbon dynamics in headwater streams: a global perspective. Reviews of Geophysics 55(2):560−585

doi: 10.1002/2016RG000547
[14]

Kominoski JS, Marczak LB, Richardson JS. 2011. Riparian forest composition affects stream litter decomposition despite similar microbial and invertebrate communities. Ecology 92(1):151−159

doi: 10.1890/10-0028.1
[15]

Rosset T, Binet S, Rigal F, Gandois L. 2022. Peatland dissolved organic carbon export to surface waters: global significance and effects of anthropogenic disturbance. Geophysical Research Letters 49(5):e2021GL096616

doi: 10.1029/2021GL096616
[16]

Billett MF, Garnett MH, Dinsmore KJ, Dyson KE, Harvey F, et al. 2012. Age and source of different forms of carbon released from boreal peatland streams during spring snowmelt in E. Finland. Biogeochemistry 111(1):273−286

doi: 10.1007/s10533-011-9645-4
[17]

Frolking S, Goulden ML, Wofsy SC, Fan SM, Sutton DJ, et al. 1996. Modelling temporal variability in the carbon balance of a spruce/moss boreal forest. Global Change Biology 2(4):343−366

doi: 10.1111/j.1365-2486.1996.tb00086.x
[18]

Leroy F, Gogo S, Guimbaud C, Bernard-Jannin L, Hu Z, et al. 2017. Vegetation composition controls temperature sensitivity of CO2 and CH4 emissions and DOC concentration in peatlands. Soil Biology and Biochemistry 107:164−167

doi: 10.1016/j.soilbio.2017.01.005
[19]

Chi J, Nilsson MB, Laudon H, Lindroth A, Wallerman J, et al. 2020. The Net Landscape Carbon Balance—Integrating terrestrial and aquatic carbon fluxes in a managed boreal forest landscape in Sweden. Global Change Biology 26(4):2353−2367

doi: 10.1111/gcb.14983
[20]

Llanos-Paez O, Qi J, Sabater S, Acuña V. 2025. Simulating dissolved organic carbon dynamics in non-perennial rivers: a novel SWAT-IR modeling approach. Earth Systems and Environment 9(3):1715−1735

doi: 10.1007/s41748-025-00736-6
[21]

Ågren A, Buffam I, Berggren M, Bishop K, Jansson M, et al. 2008. Dissolved organic carbon characteristics in boreal streams in a forest-wetland gradient during the transition between winter and summer. Journal of Geophysical Research: Biogeosciences 113:2007JG000674

doi: 10.1029/2007JG000674
[22]

Rasilo T, Hutchins RHS, Ruiz-González C, del Giorgio PA. 2017. Transport and transformation of soil-derived CO2, CH4 and DOC sustain CO2 supersaturation in small boreal streams. Science of the Total Environment 579:902−912

doi: 10.1016/j.scitotenv.2016.10.187
[23]

Laudon H, Berggren M, Ågren A, Buffam I, Bishop K, et al. 2011. Patterns and dynamics of dissolved organic carbon (DOC) in boreal streams: the role of processes, connectivity, and scaling. Ecosystems 14(6):880−893

doi: 10.1007/s10021-011-9452-8
[24]

Bronstert A, Niehoff D, Schiffler GR. 2023. Modelling infiltration and infiltration excess: the importance of fast and local processes. Hydrological Processes 37(4):e14875

doi: 10.1002/hyp.14875
[25]

Jutebring Sterte E, Lidman F, Lindborg E, Sjöberg Y, Laudon H. 2021. How catchment characteristics influence hydrological pathways and travel times in a boreal landscape. Hydrology and Earth System Sciences 25(4):2133−2158

doi: 10.5194/hess-25-2133-2021
[26]

Kalks F, Liebmann P, Wordell-Dietrich P, Guggenberger G, Kalbitz K, et al. 2020. Fate and stability of dissolved organic carbon in topsoils and subsoils under beech forests. Biogeochemistry 148(2):111−128

doi: 10.1007/s10533-020-00649-8
[27]

Deirmendjian L, Loustau D, Augusto L, Lafont S, Chipeaux C, et al. 2018. Hydro-ecological controls on dissolved carbon dynamics in groundwater and export to streams in a temperate pine forest. Biogeosciences 15(2):669−691

doi: 10.5194/bg-15-669-2018
[28]

Shen Y, Chapelle FH, Strom EW, Benner R. 2015. Origins and bioavailability of dissolved organic matter in groundwater. Biogeochemistry 122(1):61−78

doi: 10.1007/s10533-014-0029-4
[29]

Ledesma JLJ, Grabs T, Bishop KH, Schiff SL, Köhler SJ. 2015. Potential for long-term transfer of dissolved organic carbon from riparian zones to streams in boreal catchments. Global Change Biology 21(8):2963−2979

doi: 10.1111/gcb.12872
[30]

Ploum SW, Laudon H, Peralta-Tapia A, Kuglerová L. 2020. Are dissolved organic carbon concentrations in riparian groundwater linked to hydrological pathways in the boreal forest? Hydrology and Earth System Sciences 24(4):1709−1720

doi: 10.5194/hess-24-1709-2020
[31]

Myrstener M, Greenberg LA, Lidberg W, Kuglerová L. 2025. Riparian buffers mitigate downstream effects of clear-cutting on instream metabolic rates. Journal of Environmental Management 379:124740

doi: 10.1016/j.jenvman.2025.124740
[32]

Wen H, Perdrial J, Abbott BW, Bernal S, Dupas R, et al. 2020. Temperature controls production but hydrology regulates export of dissolved organic carbon at the catchment scale. Hydrology and Earth System Sciences 24(2):945−966

doi: 10.5194/hess-24-945-2020
[33]

Futter MN, Butterfield D, Cosby BJ, Dillon PJ, Wade AJ, et al. 2007. Modeling the mechanisms that control in-stream dissolved organic carbon dynamics in upland and forested catchments. Water Resources Research 43(2):2006WR004960

doi: 10.1029/2006WR004960
[34]

Nkoue Ndondo GR, Probst JL, Ndjama J, Ndam Ngoupayou JR, Boeglin JL, et al. 2021. Stable carbon isotopes δ13C as a proxy for characterizing carbon sources and processes in a small tropical headwater catchment: nsimi, Cameroon. Aquatic Geochemistry 27(1):1−30

doi: 10.1007/s10498-020-09386-8
[35]

Harvey ET, Kratzer S, Andersson A. 2015. Relationships between colored dissolved organic matter and dissolved organic carbon in different coastal gradients of the Baltic Sea. AMBIO 44(3):392−401

doi: 10.1007/s13280-015-0658-4
[36]

Griffin CG, Frey KE, Rogan J, Holmes RM. 2011. Spatial and interannual variability of dissolved organic matter in the Kolyma River, East Siberia, observed using satellite imagery. Journal of Geophysical Research 116(G3):G03018

doi: 10.1029/2010jg001634
[37]

Wang S, Yu S, Zhao X, Zhao X, Mason-Jones K, et al. 2022. Experimental evidence for the impact of phages on mineralization of soil-derived dissolved organic matter under different temperature regimes. Science of the Total Environment 846:157517

doi: 10.1016/j.scitotenv.2022.157517
[38]

Fasching C, Behounek B, Singer GA, Battin TJ. 2014. Microbial degradation of terrigenous dissolved organic matter and potential consequences for carbon cycling in brown-water streams. Scientific Reports 4:4981

doi: 10.1038/srep04981
[39]

Ward ND, Bianchi TS, Medeiros PM, Seidel M, Richey JE, et al. 2017. Where carbon goes when water flows: carbon cycling across the aquatic continuum. Frontiers in Marine Science 4:7

doi: 10.3389/fmars.2017.00007
[40]

Hu B, Wang P, Wang C, Bao T. 2022. Photogeochemistry of particulate organic matter in aquatic systems: a review. Science of the Total Environment 806:150467

doi: 10.1016/j.scitotenv.2021.150467
[41]

Estapa ML, Mayer LM, Boss E. 2012. Rate and apparent quantum yield of photodissolution of sedimentary organic matter. Limnology and Oceanography 57(6):1743−1756

doi: 10.4319/lo.2012.57.6.1743
[42]

Helms JR, Glinski DA, Mead RN, Southwell MW, Avery GB, et al. 2014. Photochemical dissolution of organic matter from resuspended sediments: impact of source and diagenetic state on photorelease. Organic Geochemistry 73:83−89

doi: 10.1016/j.orggeochem.2014.05.011
[43]

Dong Y, Peng W, Liu Y, Wang Z. 2021. Photochemical origin of reactive radicals and halogenated organic substances in natural waters: a review. Journal of Hazardous Materials 401:123884

doi: 10.1016/j.jhazmat.2020.123884
[44]

Hu B, Wang P, Zhang N, Wang C, Ao Y. 2016. Photoproduction of dissolved organic carbon and inorganic nutrients from resuspended lake sediments. Environmental Science and Pollution Research 23(21):22126−22135

doi: 10.1007/s11356-016-7327-4
[45]

Koehler B, Broman E, Tranvik LJ. 2016. Apparent quantum yield of photochemical dissolved organic carbon mineralization in lakes. Limnology and Oceanography 61(6):2207−2221

doi: 10.1002/lno.10366
[46]

Hu B, Wang P, Bao T, Shi Y. 2020. The photochemical release of dissolved organic matter from resuspended sediments: insights from fluorescence spectroscopy. Chemosphere 257:127161

doi: 10.1016/j.chemosphere.2020.127161
[47]

Gao Y, Jia J, Lu Y, Sun K, Wang J, et al. 2024. Carbon transportation, transformation, and sedimentation processes at the land-river-estuary continuum. Fundamental Research 4(6):1594−1602

doi: 10.1016/j.fmre.2022.07.007
[48]

Bouchez J, Beyssac O, Galy V, Gaillardet J, France-Lanord C, et al. 2010. Oxidation of petrogenic organic carbon in the Amazon floodplain as a source of atmospheric CO2. Geology 38(3):255−258

doi: 10.1130/g30608.1
[49]

Weyhenmeyer GA, Kortelainen P, Sobek S, Müller R, Rantakari M. 2012. Carbon dioxide in boreal surface waters: a comparison of lakes and streams. Ecosystems 15(8):1295−1307

doi: 10.1007/s10021-012-9585-4
[50]

Wallin MB, Grabs T, Buffam I, Laudon H, Agren Å, et al. 2013. Evasion of CO2 from streams - the dominant component of the carbon export through the aquatic conduit in a boreal landscape. Global Change Biology 19(3):785−797

doi: 10.1111/gcb.12083
[51]

Creed IF, Bergström AK, Trick CG, Grimm NB, Hessen DO, et al. 2018. Global change-driven effects on dissolved organic matter composition: implications for food webs of northern lakes. Global Change Biology 24(8):3692−3714

doi: 10.1111/gcb.14129
[52]

Marcon L, Bleninger T, Männich M, Ishikawa M, Hilgert S, et al. 2024. Exploring the temporal dynamics of methane ebullition in a subtropical freshwater reservoir. PLoS One 19(3):e0298186

doi: 10.1371/journal.pone.0298186
[53]

Robison AL, Wollheim WM, Turek B, Bova C, Snay C, et al. 2021. Spatial and temporal heterogeneity of methane ebullition in lowland headwater streams and the impact on sampling design. Limnology and Oceanography 66(12):4063−4076

doi: 10.1002/lno.11943
[54]

Laanbroek HJ. 2010. Methane emission from natural wetlands: interplay between emergent macrophytes and soil microbial processes. A mini-review. Annals of Botany 105(1):141−153

doi: 10.1093/aob/mcp201
[55]

Downing JA, Cole JJ, Middelburg JJ, Striegl RG, Duarte CM, et al. 2008. Sediment organic carbon burial in agriculturally eutrophic impoundments over the last century. Global Biogeochemical Cycles 22(1):2006GB002854

doi: 10.1029/2006GB002854
[56]

Junna T, Asmala E, Mäkinen J, Kortelainen P, Jilbert T, et al. 2025. Land use as a key driver of increased organic carbon burial in boreal lakes. Biogeochemistry 168(6):87

doi: 10.1007/s10533-025-01285-w
[57]

Chmiel HE, Niggemann J, Kokic J, Ferland MÈ, Dittmar T, et al. 2015. Uncoupled organic matter burial and quality in boreal lake sediments over the Holocene. Journal of Geophysical Research: Biogeosciences 120(9):1751−1763

doi: 10.1002/2015JG002987
[58]

Ferland ME, Prairie YT, Teodoru C, del Giorgio PA. 2014. Linking organic carbon sedimentation, burial efficiency, and long-term accumulation in boreal lakes. Journal of Geophysical Research: Biogeosciences 119(5):836−847

doi: 10.1002/2013JG002345
[59]

Cael BB, Seekell DA. 2023. Simple model of morphometric constraint on carbon burial in boreal lakes. Frontiers in Environmental Science 11:1101332

doi: 10.3389/fenvs.2023.1101332
[60]

Korppoo M, Huttunen I, Huttunen M, Narikka M, Silander J, et al. 2026. Simulating carbon fluxes in boreal catchments: WSFS-Vemala model development and key insights. Hydrology and Earth System Sciences 30(10):3095−3119

doi: 10.5194/hess-30-3095-2026
[61]

Vachon D, Sponseller RA, Karlsson J. 2021. Integrating carbon emission, accumulation and transport in inland waters to understand their role in the global carbon cycle. Global Change Biology 27(4):719−727

doi: 10.1111/gcb.15448
[62]

Tank SE, Striegl RG, McClelland JW, Kokelj SV. 2016. Multi-decadal increases in dissolved organic carbon and alkalinity flux from the Mackenzie drainage basin to the Arctic Ocean. Environmental Research Letters 11:054015

doi: 10.1088/1748-9326/11/5/054015
[63]

Zhu X, Chen L, Pumpanen J, Ojala A, Zobitz J, et al. 2022. The role of terrestrial productivity and hydrology in regulating aquatic dissolved organic carbon concentrations in boreal catchments. Global Change Biology 28(8):2764−2778

doi: 10.1111/gcb.16094
[64]

Harris LI, Olefeldt D, Pelletier N, Blodau C, Knorr KH, et al. 2023. Permafrost thaw causes large carbon loss in boreal peatlands while changes to peat quality are limited. Global Change Biology 29(19):5720−5735

doi: 10.1111/gcb.16894
[65]

Freeman C, Fenner N, Ostle NJ, Kang H, Dowrick DJ, et al. 2004. Export of dissolved organic carbon from peatlands under elevated carbon dioxide levels. Nature 430(6996):195−198

doi: 10.1038/nature02707
[66]

Finstad AG, Andersen T, Larsen S, Tominaga K, Blumentrath S, et al. 2016. From greening to browning: catchment vegetation development and reduced S-deposition promote organic carbon load on decadal time scales in Nordic lakes. Scientific Reports 6:31944

doi: 10.1038/srep31944
[67]

Škerlep M, Steiner E, Axelsson AL, Kritzberg ES. 2020. Afforestation driving long-term surface water browning. Global Change Biology 26(3):1390−1399

doi: 10.1111/gcb.14891
[68]

Lindbladh M, Axelsson AL, Hultberg T, Brunet J, Felton A. 2014. From broadleaves to spruce–the borealization of southern Sweden. Scandinavian Journal of Forest Research 29(7):686−696

doi: 10.1080/02827581.2014.960893
[69]

Smith DJ, Duston S, Barney JN, Strahm BD, Agarwal P, et al. 2024. Dissolved organic carbon characteristics are associated with changes in soil microbiome under different plant species. Applied Soil Ecology 196:105313

doi: 10.1016/j.apsoil.2024.105313
[70]

Meli P, Ellison D, de Barros Ferraz SF, Filoso S, Brancalion PHS. 2024. On the unique value of forests for water: hydrologic impacts of forest disturbances, conversion, and restoration. Global Change Biology 30(2):e17162

doi: 10.1111/gcb.17162
[71]

Woldesenbet TA, Elagib NA, Ribbe L, Heinrich J. 2017. Hydrological responses to land use/cover changes in the source region of the Upper Blue Nile Basin, Ethiopia. Science of the Total Environment 575:724−741

doi: 10.1016/j.scitotenv.2016.09.124
[72]

Jacobson CR. 2011. Identification and quantification of the hydrological impacts of imperviousness in urban catchments: a review. Journal of Environmental Management 92(6):1438−1448

doi: 10.1016/j.jenvman.2011.01.018
[73]

Byers AK, Condron L, Wakelin SA, Black A. 2024. Land use intensity is a major driver of soil microbial and carbon cycling across an agricultural landscape. Soil Biology and Biochemistry 196:109508

doi: 10.1016/j.soilbio.2024.109508
[74]

Young DM, Baird AJ, Morris PJ, Holden J. 2017. Simulating the long-term impacts of drainage and restoration on the ecohydrology of peatlands. Water Resources Research 53(8):6510−6522

doi: 10.1002/2016WR019898
[75]

Laine AM, Mehtätalo L, Tolvanen A, Frolking S, Tuittila ES. 2019. Impacts of drainage, restoration and warming on boreal wetland greenhouse gas fluxes. Science of the Total Environment 647:169−181

doi: 10.1016/j.scitotenv.2018.07.390
[76]

Polack J, Pumpanen J, Mola-Yudego B, Berninger F. 2026. Post-fire effects on dissolved organic carbon concentrations in freshwater streams: a meta-analysis. Journal of Hydrology 664:134319

doi: 10.1016/j.jhydrol.2025.134319
[77]

Hohner AK, Rhoades CC, Wilkerson P, Rosario-Ortiz FL. 2019. Wildfires alter forest watersheds and threaten drinking water quality. Accounts of Chemical Research 52(5):1234−1244

doi: 10.1021/acs.accounts.8b00670
[78]

Matula E, Emilson EJS, Smenderovac E, Fonvielle JA, Freeman EC, et al. 2025. Wildfires change summertime dissolved organic matter in boreal headwater streams. Journal of Geophysical Research: Biogeosciences 130(11):e2025JG008980

doi: 10.1029/2025JG008980
[79]

Rebiffé M, Kohl L, Köster E, Keinänen M, Berninger F, et al. 2025. Short-term effects of low-intensity surface fires on dissolved organic matter from boreal forest soils. Journal of Soils and Sediments 25(11):3225−3244

doi: 10.1007/s11368-025-04041-7
[80]

Davidson SJ, Elmes MC, Rogers H, van Beest C, Petrone R, et al. 2019. Hydrogeologic setting overrides any influence of wildfire on pore water dissolved organic carbon concentration and quality at a boreal Fen. Ecohydrology 12(7):e2141

doi: 10.1002/eco.2141
[81]

Bowering KL, Edwards KA, Wiersma YF, Billings SA, Warren J, et al. 2023. Dissolved organic carbon mobilization across a climate transect of mesic boreal forests is explained by air temperature and snowpack duration. Ecosystems 26(1):55−71

doi: 10.1007/s10021-022-00741-0
[82]

Strååt KD, Mörth CM, Undeman E. 2018. Future export of particulate and dissolved organic carbon from land to coastal zones of the Baltic Sea. Journal of Marine Systems 177:8−20

doi: 10.1016/j.jmarsys.2017.09.002
[83]

Liu S, Wang P, Yu J, Zhou R, Bai B, et al. 2026. Changes in hydrological regime regulate POC export across permafrost-dominated Arctic River basins. Geoscience Frontiers 17(1):102208

doi: 10.1016/j.gsf.2025.102208
[84]

Liang G, Stefanski A, Eddy WC, Bermudez R, Montgomery RA, et al. 2024. Soil respiration response to decade-long warming modulated by soil moisture in a boreal forest. Nature Geoscience 17(9):905−911

doi: 10.1038/s41561-024-01512-3
[85]

Öquist MG, Wallin M, Seibert J, Bishop K, Laudon H. 2009. Dissolved inorganic carbon export across the soil/stream interface and its fate in a boreal headwater stream. Environmental Science & Technology 43(19):7364−7369

doi: 10.1021/es900416h
[86]

Yuan F, Wang Y, Ricciuto DM, Shi X, Yuan F, et al. 2021. An integrative model for soil biogeochemistry and methane processes. II: warming and elevated CO2 effects on peatland CH4 emissions. Journal of Geophysical Research: Biogeosciences 126(8):e2020JG005963

doi: 10.1029/2020jg005963
[87]

Schelker J, Eklöf K, Bishop K, Laudon H. 2012. Effects of forestry operations on dissolved organic carbon concentrations and export in boreal first-order streams. Journal of Geophysical Research: Biogeosciences 117(G1):2011JG001827

doi: 10.1029/2011JG001827
[88]

Hatten J, Warrick J, Goni M, Wheatcroft R, Pasternack G, et al. 2011. The role of wildfire in the export of particulate organic carbon from a small mountainous river. AGU Fall Meeting Abstracts 2011:B23C-0434

[89]

Rantakari M, Mattsson T, Kortelainen P, Piirainen S, Finér L, et al. 2010. Organic and inorganic carbon concentrations and fluxes from managed and unmanaged boreal first-order catchments. Science of the Total Environment 408(7):1649−1658

doi: 10.1016/j.scitotenv.2009.12.025
[90]

Richardson C, Montalvo M, Wagner S, Barton R, Paytan A, et al. 2024. Exploring the complex effects of wildfire on stream water chemistry: insights from concentration-discharge relationships. Water Resources Research 60(2):e2023WR034940

doi: 10.1029/2023wr034940
[91]

Hermesdorf L, Elberling B, D'Imperio L, Xu W, Lambæk A, et al. 2022. Effects of fire on CO2, CH4, and N2O exchange in a well-drained Arctic heath ecosystem. Global Change Biology 28(16):4882−4899

doi: 10.1111/gcb.16222
[92]

Davidson SJ, Van Beest C, Petrone R, Strack M. 2019. Wildfire overrides hydrological controls on boreal peatland methane emissions. Biogeosciences 16(13):2651−2660

doi: 10.5194/bg-16-2651-2019
[93]

Tian H, Yao Y, Li Y, Shi H, Pan S, et al. 2023. Increased terrestrial carbon export and CO2 evasion from global inland waters since the preindustrial era. Global Biogeochemical Cycles 37(10):e2023GB007776

doi: 10.1029/2023GB007776
[94]

Fellman JB, Hood E, Spencer RGM. 2010. Fluorescence spectroscopy opens new windows into dissolved organic matter dynamics in freshwater ecosystems: a review. Limnology and Oceanography 55(6):2452−2462

doi: 10.4319/lo.2010.55.6.2452
[95]

Arndt KA, Hashemi J, Natali SM, Schiferl LD, Virkkala AM. 2023. Recent advances and challenges in monitoring and modeling non-growing season carbon dioxide fluxes from the Arctic boreal zone. Current Climate Change Reports 9(2):27−40

doi: 10.1007/s40641-023-00190-4
[96]

Rehn L, Sponseller RA, Laudon H, Wallin MB. 2023. Long-term changes in dissolved inorganic carbon across boreal streams caused by altered hydrology. Limnology and Oceanography 68(2):409−423

doi: 10.1002/lno.12282
[97]

Battin TJ, Kaplan LA, Findlay S, Hopkinson CS, Marti E, et al. 2008. Biophysical controls on organic carbon fluxes in fluvial networks. Nature Geoscience 1(2):95−100

doi: 10.1038/ngeo101
[98]

Zhao B, Zhuang Q, Shurpali N, Köster K, Berninger F, et al. 2021. North American boreal forests are a large carbon source due to wildfires from 1986 to 2016. Scientific Reports 11:7723

doi: 10.1038/s41598-021-87343-3
[99]

Nakhavali M, Lauerwald R, Regnier P, Guenet B, Chadburn S, et al. 2021. Leaching of dissolved organic carbon from mineral soils plays a significant role in the terrestrial carbon balance. Global Change Biology 27(5):1083−1096

doi: 10.1111/gcb.15460
[100]

Dietze M, White EP, Abeyta A, Boettiger C, Bueno Watts N, et al. 2024. Near-term ecological forecasting for climate change action. Nature Climate Change 14(12):1236−1244

doi: 10.1038/s41558-024-02182-0