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Divergent Trends in the Seasonal Amplitude of Atmospheric CO2 Across the Globe

  • Linyang Guo
  • , Jiawen Zhu
  • , Stephen Sitch
  • , Pierre Friedlingstein
  • , Judith Hauck
  • , Yongjiu Dai
  • , Yao Zhang
  • , Fang Li
  • , Xiaodong Zeng
  • State key Laboratory of Earth System Numerical Modeling and Application
  • Institute of Atmospheric Physics Chinese Academy of Sciences
  • Nanjing University of Information Science and Technology
  • University of Chinese Academy of Sciences
  • Faculty of Environment
  • University of Exeter
  • Helmholtz Centre for Polar and Marine Sciences
  • School of Atmospheric Sciences
  • Sun Yat-Sen University
  • Institute of Carbon Neutrality
  • Tsinghua University

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

The seasonal cycle amplitude of atmospheric CO2 (SCA) has enhanced largely in the northern high latitudes over the past six decades. However, it remains unclear whether this SCA enhancement occurs consistently across the globe during different historical periods and what the underlying mechanisms are. This study used 68-site CO2 observations and 27 model data sets from inversion products and process-based models to estimate global trends in SCA and the seasonal amplitude of terrestrial and oceanic carbon fluxes across six latitudinal bands. We found that the northern high-latitude SCA was enhanced significantly and this enhancement has accelerated by 74.24%. In contrast, significant SCA increases were rare in historical periods of the tropics (38.30%) and the southern mid-high latitudes (22.43%), where SCA trends exhibited a decadal transition from negative to positive. Through the statistical decomposition and GEOS-Chem factorial simulations, we attributed that the acceleration of the northern high-latitude SCA enhancement was driven by combined effects of terrestrial carbon fluxes (45.60%) and atmospheric transport (40.91%). Meanwhile, the decadal transition of SCA trends in the tropics and the southern temperate region was dominated by atmospheric transport. Overall, these results provide a global perspective on the variability of SCA trends and advance our understanding of the seasonal variation of global carbon processes.

langue originaleAnglais
Numéro d'articlee2026EF008364
journalEarth's Future
Volume14
Numéro de publication7
Les DOIs
étatPublié - 1 juil. 2026

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