TY - JOUR
T1 - A precision compost strategy aligning composts and application methods with target crops and growth environments can increase global food production
AU - Zhao, Shuaixiang
AU - Schmidt, Susanne
AU - Gao, Hongjian
AU - Li, Tingyu
AU - Chen, Xinping
AU - Hou, Yong
AU - Chadwick, Dave
AU - Tian, Jing
AU - Dou, Zhengxia
AU - Zhang, Weifeng
AU - Zhang, Fusuo
PY - 2022/9/5
Y1 - 2022/9/5
N2 - Compost represents an important input for sustainable agriculture, but the use of diverse compost types causes uncertain outcomes. Here we performed a global meta-analysis with over 2,000 observations to determine whether a precision compost strategy (PCS) that aligns suitable composts and application methods with target crops and growth environments can advance sustainable food production. Eleven key predictors of compost (carbon-to-nutrient ratios, pH and salt content electric conductivity), management (nitrogen N supply) and biophysical settings (crop type, soil texture, soil organic carbon, pH, temperature and rainfall) determined 80% of the effect on crop yield, soil organic carbon and nitrous oxide emissions. The benefits of a PCS are more pronounced in drier and warmer climates and soils with acidic pH and sandy or clay texture, achieving up to 40% higher crop yield than conventional practices. Using a data-driven approach, we estimate that a global PCS can increase the production of major cereal crops by 96.3 Tg annually, which is 4% of current production. A global PCS has the technological potential to restore 19.5 Pg carbon in cropland topsoil (0-20 cm), equivalent to 26.5% of current topsoil soil organic carbon stocks. Together, this points to a central role of PCS in current and emerging agriculture. [Abstract copyright: © 2022. The Author(s), under exclusive licence to Springer Nature Limited.]
AB - Compost represents an important input for sustainable agriculture, but the use of diverse compost types causes uncertain outcomes. Here we performed a global meta-analysis with over 2,000 observations to determine whether a precision compost strategy (PCS) that aligns suitable composts and application methods with target crops and growth environments can advance sustainable food production. Eleven key predictors of compost (carbon-to-nutrient ratios, pH and salt content electric conductivity), management (nitrogen N supply) and biophysical settings (crop type, soil texture, soil organic carbon, pH, temperature and rainfall) determined 80% of the effect on crop yield, soil organic carbon and nitrous oxide emissions. The benefits of a PCS are more pronounced in drier and warmer climates and soils with acidic pH and sandy or clay texture, achieving up to 40% higher crop yield than conventional practices. Using a data-driven approach, we estimate that a global PCS can increase the production of major cereal crops by 96.3 Tg annually, which is 4% of current production. A global PCS has the technological potential to restore 19.5 Pg carbon in cropland topsoil (0-20 cm), equivalent to 26.5% of current topsoil soil organic carbon stocks. Together, this points to a central role of PCS in current and emerging agriculture. [Abstract copyright: © 2022. The Author(s), under exclusive licence to Springer Nature Limited.]
KW - Composting
KW - Soil - chemistry
KW - Carbon
KW - Crops, Agricultural
KW - Agriculture - methods
U2 - 10.1038/s43016-022-00584-x
DO - 10.1038/s43016-022-00584-x
M3 - Article
C2 - 37118141
SN - 2662-1355
VL - 3
SP - 741
EP - 752
JO - Nature Food
JF - Nature Food
ER -