the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
Global Carbon Budget 2023
Pierre Friedlingstein
Michael O'Sullivan
Matthew W. Jones
Robbie M. Andrew
Dorothee C. E. Bakker
Judith Hauck
Peter Landschützer
Corinne Le Quéré
Ingrid T. Luijkx
Glen P. Peters
Wouter Peters
Julia Pongratz
Clemens Schwingshackl
Stephen Sitch
Josep G. Canadell
Philippe Ciais
Robert B. Jackson
Simone R. Alin
Peter Anthoni
Leticia Barbero
Nicholas R. Bates
Meike Becker
Nicolas Bellouin
Bertrand Decharme
Laurent Bopp
Ida Bagus Mandhara Brasika
Patricia Cadule
Matthew A. Chamberlain
Naveen Chandra
Thi-Tuyet-Trang Chau
Frédéric Chevallier
Louise P. Chini
Margot Cronin
Xinyu Dou
Kazutaka Enyo
Wiley Evans
Stefanie Falk
Richard A. Feely
Liang Feng
Daniel J. Ford
Thomas Gasser
Josefine Ghattas
Thanos Gkritzalis
Giacomo Grassi
Luke Gregor
Nicolas Gruber
Özgür Gürses
Ian Harris
Matthew Hefner
Jens Heinke
Richard A. Houghton
George C. Hurtt
Yosuke Iida
Tatiana Ilyina
Andrew R. Jacobson
Atul Jain
Tereza Jarníková
Annika Jersild
Fei Jiang
Zhe Jin
Fortunat Joos
Etsushi Kato
Ralph F. Keeling
Daniel Kennedy
Kees Klein Goldewijk
Jürgen Knauer
Jan Ivar Korsbakken
Arne Körtzinger
Nathalie Lefèvre
Hongmei Li
Junjie Liu
Zhiqiang Liu
Lei Ma
Greg Marland
Nicolas Mayot
Patrick C. McGuire
Galen A. McKinley
Gesa Meyer
Eric J. Morgan
David R. Munro
Shin-Ichiro Nakaoka
Yosuke Niwa
Kevin M. O'Brien
Are Olsen
Abdirahman M. Omar
Tsuneo Ono
Melf Paulsen
Denis Pierrot
Katie Pocock
Benjamin Poulter
Carter M. Powis
Gregor Rehder
Laure Resplandy
Eddy Robertson
Christian Rödenbeck
Thais M. Rosan
Jörg Schwinger
Roland Séférian
T. Luke Smallman
Stephen M. Smith
Reinel Sospedra-Alfonso
Adrienne J. Sutton
Colm Sweeney
Shintaro Takao
Pieter P. Tans
Hanqin Tian
Bronte Tilbrook
Hiroyuki Tsujino
Francesco Tubiello
Guido R. van der Werf
Erik van Ooijen
Rik Wanninkhof
Michio Watanabe
Cathy Wimart-Rousseau
Dongxu Yang
Xiaojuan Yang
Wenping Yuan
Sönke Zaehle
Jiye Zeng
Related authors
Plants send about a third of their captured carbon below ground, to roots and soil fungi that take up water and nutrients. Most climate models still treat the entire root system as one uniform mass. We built a new land-model version that separates roots into three types: transport roots, absorptive roots, and fungal partners. Tested at twenty sites worldwide, it cut errors in simulated ecosystem carbon exchange by more than half, sharpening projections of how land will respond to climate change.
We examine the impact of diurnally varying African biomass burning (BB) emissions on tropospheric ozone using GEOS-Chem simulations with a high-resolution satellite-derived emission inventory. Compared to coarser temporal resolutions, incorporating diurnal variations leads to significant changes in surface ozone and atmospheric oxidation capacity. Our findings highlight the importance of accurately representing BB emission timing in chemical transport models to improve ozone predictions.
- clear and pedagogical presentation of up-to-date climate equations, climate parameters and associated uncertainties;
- dynamic metrics interpretation support;
- recommendations of new characterisation factors for temperature change metrics in future assessment reports;
- open-source assessment tool release.
climate-assessmentworkflow that was used in the IPCC AR6 Working Group III report. The paper provides key insight for anyone wishing to understand the assessment of climate outcomes of mitigation pathways in the context of the Paris Agreement.
green manureto reducing or removing the use of N fertilizer in global agricultural systems, considering different climate conditions, management practices, and land-use change scenarios.
ocean acidification), which may have adverse effects on marine ecosystems. Our Python package, PyCO2SYS, models the chemical reactions of CO2 in seawater, allowing us to quantify the corresponding changes in pH and related chemical properties.
Cited articles
- Article
(12950 KB) - Full-text XML