4.7 Article

Modeling suggests fossil fuel emissions have been driving increased land carbon uptake since the turn of the 20th Century

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SCIENTIFIC REPORTS
卷 10, 期 1, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41598-020-66103-9

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资金

  1. National Aeronautics and Space Administration (NASA) [N4-TE14-0047-NNH14ZDA001N-TE, 13-CARBON13_2-0036-NNH13ZDA001N-CARBON, 14-CMAC14-NNX16AB19G]
  2. NASA ROSES Grant [NNX10AG01A, NNH10AN681]
  3. NASA program: CARBON
  4. NASA program: CMS
  5. NASA program: IDS
  6. NASA program: INCA

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Terrestrial vegetation removes CO2 from the atmosphere; an important climate regulation service that slows global warming. This 119 Pg C per annum transfer of CO2 into plants-gross primary productivity (GPP)-is the largest land carbon flux globally. While understanding past and anticipated future GPP changes is necessary to support carbon management, the factors driving long-term changes in GPP are largely unknown. Here we show that 1901 to 2010 changes in GPP have been dominated by anthropogenic activity. Our dual constraint attribution approach provides three insights into the spatiotemporal patterns of GPP change. First, anthropogenic controls on GPP change have increased from 57% (1901 decade) to 94% (2001 decade) of the vegetated land surface. Second, CO2 fertilization and nitro gen deposition are the most important drivers of change, 19.8 and 11.1 Pg C per annum (2001 decade) respectively, especially in the tropics and industrialized areas since the 1970's. Third, changes in climate have functioned as fertilization to enhance GPP (1.4 Pg C per annum in the 2001 decade). These findings suggest that, from a land carbon balance perspective, the Anthropocene began over 100 years ago and that global change drivers have allowed GPP uptake to keep pace with anthropogenic emissions.

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