Bibliography
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“Determinants Of Community Compositional Change Are Equally Affected By Global Change”. Ecology Letters 24. Ecology Letters (2021): 1892–1904. doi:10.1111/ele.13824.
. “Ozone Depletion, Ultraviolet Radiation, Climate Change And Prospects For A Sustainable Future”. Nature Sustainability 2. Nature Sustainability (2019): 569–579. doi:10.1038/s41893-019-0314-2.
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“Understanding The Effects Of Climate Change Via Disturbance On Pristine Arctic Lakes—Multitrophic Level Response And Recovery To A 12‐Yr, Low‐Level Fertilization Experiment”. Limnology And Oceanography. Limnology And Oceanography (2021): lno.11893. doi:10.1002/lno.11893.
. “An Open-Source, Durable, And Low-Cost Alternative To Commercially Available Soil Temperature Data Loggers”. Sensors 22. Sensors (2021): 148. doi:10.3390/s22010148.
. “Long-Term Experimental Warming And Fertilization Have Opposing Effects On Ectomycorrhizal Root Enzyme Activity And Fungal Community Composition In Arctic Tundra”. Soil Biology And Biochemistry 154. Soil Biology And Biochemistry (2021): 108151. doi:10.1016/j.soilbio.2021.108151.
. “Long-Term Warming In Alaska Enlarges The Diazotrophic Community In Deep Soils”. Mbio 10. Mbio (2019): e02521–18. doi:10.1128/mBio.02521-18.
. “Interspecific And Intraspecific Variation In Leaf Toughness Of Arctic Plants In Relation To Habitat And Nutrient Supply”. Arctic Science. Arctic Science (2021): 1–15. doi:10.1139/as-2020-0016.
. “High Leaf Respiration Rates May Limit The Success Of White Spruce Saplings Growing In The Kampfzone At The Arctic Treeline”. Frontiers In Plant Science 12. Frontiers In Plant Science (2021): 746464. doi:10.3389/fpls.2021.746464.
. “Extracellular Electron Transfer May Be An Overlooked Contribution To Pelagic Respiration In Humic-Rich Freshwater Lakes”. American Society For Microbiology 4. American Society For Microbiology (2019): e00436–18. doi:10.1128/mSphere.00436-18.
. “Biogeochemical Responses Over 37 Years To Manipulation Of Phosphorus Concentrations In An Arctic River: The Upper Kuparuk River Experiment”. Hydrological Processes 35. Hydrological Processes (2021). doi:10.1002/hyp.14075.
. “Investigating The Morphological And Genetic Divergence Of Arctic Char ( \Textit{Salvelinus Alpinus) Populations In Lakes Of Arctic Alaska”. Ecology And Evolution 11. Ecology And Evolution (2021): 3040–3057. doi:10.1002/ece3.7211.
. “Large And Small Herbivores Have Strong Effects On Tundra Vegetation In Scandinavia And Alaska”. Ecology And Evolution 11. Ecology And Evolution (2021): 12141–12152. doi:10.1002/ece3.7977.
. “Enhanced Plant Leaf P And Unchanged Soil P Stocks After A Quarter Century Of Warming In The Arctic Tundra”. Ecosphere 12. Ecosphere (2021). doi:10.1002/ecs2.3838.
. “Herbivore Absence Can Shift Dry Heath Tundra From Carbon Source To Sink During Peak Growing Season”. Environmental Research Letters 16. Environmental Research Letters (2021): 024027. doi:10.1088/1748-9326/abd3d0.
. “The Expanding Footprint Of Rapid Arctic Change”. Earth's Future 7. Earth's Future (2019): 212–218. doi:10.1029/2018ef001088.
. “Large Loss Of Co2 In Winter Observed Across The Northern Permafrost Region”. Nature Climate Change 9. Nature Climate Change (2019): 852–857. doi:10.1038/s41558-019-0592-8.
. “Active Layer Groundwater Flow: The Interrelated Effects Of Stratigraphy, Thaw, And Topography”. Water Resources Research 55. Water Resources Research (2019): 6555–6576. doi:10.1029/2018WR024636.
. “Intraspecific Variation In Phenology Offers Resilience To Climate Change For \Textit{Eriophorum Vaginatum”. Arctic Science. Arctic Science (2021): 1–17. doi:10.1139/as-2020-0039.
. “Shrub Expansion In The Arctic May Induce Large‐Scale Carbon Losses Due To Changes In Plant‐Soil Interactions”. Plant And Soil 463. Plant And Soil (2021): 643–651. doi:10.1007/s11104-021-04919-8.
. “Effects Of Increased Temperature On Arctic Slimy Sculpin (Cottus Cognatus) Is Mediated By Food Availability: Implications For Climate Change”. Freshwater Biology 66. Freshwater Biology (2021): 549–561. doi:10.1111/fwb.13659.
. “Belowground Community Responses To Fire: Meta-Analysis Reveals Contrasting Responses Of Soil Microorganisms And Mesofauna”. Oikos 128. Oikos (2019): 309–327. doi:10.1111/oik.05738.
. “Maximum Summer Temperatures Predict The Temperature Adaptation Of Arctic Soil Bacterial Communities”. Biogeosciences Discussions. Biogeosciences Discussions (2022): 1–26. doi:10.5194/bg-2022-184.
. “Rainfall Alters Permafrost Soil Redox Conditions, But Meta-Omics Show Divergent Microbial Community Responses By Tundra Type In The Arctic”. Soil Systems 5. Soil Systems (2021): 17. doi:10.3390/soilsystems5010017.
. “The Soil Microbiome And Its Response To Permafrost Thaw In Arctic Tundra”, 2022. doi:10.7302/5919.
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