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Precision Agriculture · 2026 · Vol. 27 · Issue 3 · Springer
Purpose Farmers in Australia are currently facing profound challenges due to soil degradation, biodiversity loss, climate change, biosecurity threats, and difficulties in securing labour; farmers elsewhere face similar challenges. Increased use of robotics and artificial intelligence (AI) has been proposed as a possible solution to these problems. These technologies have the potential to radically transform the practice of far...
Global Change Biology · 2025 · Vol. 31 · Issue 9 · Wiley
Plants play a key role in mediating soil response to global change, and breeding or engineering crops to increase soil organic carbon (SOC) storage is a potential route to land‐based carbon dioxide removal in agricultural systems. However, due to limited observational datasets plus shifting paradigms of SOC stabilization, it is unclear which plant traits are most important for enhancing different types of soil organic matter....
Ecology · 2023 · Vol. 104 · Issue 2 · Wiley
Increased nutrient inputs due to anthropogenic activity are expected to increase primary productivity across terrestrial ecosystems, but changes in allocation aboveground versus belowground with nutrient addition have different implications for soil carbon (C) storage. Thus, given that roots are major contributors to soil C storage, understanding belowground net primary productivity (BNPP) and biomass responses to changes in n...
Global Change Biology · 2022 · Vol. 28 · Issue 4 · Wiley
Enhancing soil carbon (C) storage has the potential to offset human‐caused increases in atmospheric CO 2 . Rising CO 2 has occurred concurrently with increasing supply rates of biologically limiting nutrients such as nitrogen (N) and phosphorus (P). However, it is unclear how increased supplies of N and P will alter soil C sequestration, particularly in grasslands, which make up nearly a third of non‐agricultural land worldwid...
Global Change Biology · 2020 · Vol. 26 · Issue 12 · Wiley
Ben Bond‐Lamberty; Danielle S. Christianson; Avni Malhotra; Stephanie C. Pennington; Debjani Sihi; Amir AghaKouchak; Hassan Anjileli; M. Altaf Arain; Juan J. Armesto; Samaneh Ashraf; Mioko Ataka; Dennis Baldocchi; Thomas Andrew Black; Nina Buchmann; Mariah S. Carbone; Shih‐Chieh Chang; Patrick Crill; Peter S. Curtis; Eric A. Davidson; Ankur R. Desai; John E. Drake; Tarek S. El‐Madany; Michael Gavazzi; Carolyn‐Monika Görres; Christopher M. Gough; Michael Goulden; Jillian Gregg; Omar Gutiérrez del Arroyo; Jin‐Sheng He; Takashi Hirano; Anya Hopple; Holly Hughes; Järvi Järveoja; Rachhpal Jassal; Jinshi Jian; Haiming Kan; Jason Kaye; Yuji Kominami; Naishen Liang; David Lipson; Catriona A. Macdonald; Kadmiel Maseyk; Kayla Mathes; Marguerite Mauritz; Melanie A. Mayes; Steve McNulty; Guofang Miao; Mirco Migliavacca; Scott Miller; Chelcy F. Miniat; Jennifer G. Nietz; Mats B. Nilsson; Asko Noormets; Hamidreza Norouzi; Christine S. O’Connell; Bruce Osborne; Cecilio Oyonarte; Zhuo Pang; Matthias Peichl; Elise Pendall; Jorge F. Perez‐Quezada; Claire L. Phillips; Richard P. Phillips; James W. Raich; Alexandre A. Renchon; Nadine K. Ruehr; Enrique P. Sánchez‐Cañete; Matthew Saunders; Kathleen E. Savage; Marion Schrumpf; Russell L. Scott; Ulli Seibt; Whendee L. Silver; Wu Sun; Daphne Szutu; Kentaro Takagi; Masahiro Takagi; Munemasa Teramoto; Mark G. Tjoelker; Susan Trumbore; Masahito Ueyama; Rodrigo Vargas; Ruth K. Varner; Joseph Verfaillie; Christoph Vogel; Jinsong Wang; Greg Winston; Tana E. Wood; Juying Wu; Thomas Wutzler; Jiye Zeng; Tianshan Zha; Quan Zhang; Junliang Zou
Globally, soils store two to three times as much carbon as currently resides in the atmosphere, and it is critical to understand how soil greenhouse gas (GHG) emissions and uptake will respond to ongoing climate change. In particular, the soil‐to‐atmosphere CO 2 flux, commonly though imprecisely termed soil respiration ( R S ), is one of the largest carbon fluxes in the Earth system. An increasing number of high‐frequency R S...