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      Land–atmosphere feedbacks exacerbate concurrent soil drought and atmospheric aridity

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          Abstract

          Compound extremes such as cooccurring soil drought (low soil moisture) and atmospheric aridity (high vapor pressure deficit) can be disastrous for natural and societal systems. Soil drought and atmospheric aridity are 2 main physiological stressors driving widespread vegetation mortality and reduced terrestrial carbon uptake. Here, we empirically demonstrate that strong negative coupling between soil moisture and vapor pressure deficit occurs globally, indicating high probability of cooccurring soil drought and atmospheric aridity. Using the Global Land Atmosphere Coupling Experiment (GLACE)-CMIP5 experiment, we further show that concurrent soil drought and atmospheric aridity are greatly exacerbated by land–atmosphere feedbacks. The feedback of soil drought on the atmosphere is largely responsible for enabling atmospheric aridity extremes. In addition, the soil moisture–precipitation feedback acts to amplify precipitation and soil moisture deficits in most regions. CMIP5 models further show that the frequency of concurrent soil drought and atmospheric aridity enhanced by land–atmosphere feedbacks is projected to increase in the 21st century. Importantly, land–atmosphere feedbacks will greatly increase the intensity of both soil drought and atmospheric aridity beyond that expected from changes in mean climate alone.

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          Author and article information

          Journal
          Proceedings of the National Academy of Sciences
          Proc Natl Acad Sci USA
          Proceedings of the National Academy of Sciences
          0027-8424
          1091-6490
          September 03 2019
          : 201904955
          Article
          10.1073/pnas.1904955116
          6754607
          31481606
          2c97c8fa-21e9-47fa-8cee-2f8e360d2133
          © 2019

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          https://www.pnas.org/site/aboutpnas/licenses.xhtml

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