Maximizing maize yields while minimizing soil erosion in Mollisol regions of China and the United States

As vital global granaries in Mollisol regions, the Upper Mississippi River Basin (UMRB) in the U.S. and Songhua River Basin (SHRB) in China face growing demands to improve maize yields while avoiding soil erosion. We evaluated effects of individual and integrated technologies on maize yield, yield stability, and soil erosion from 2001 to 2018 with a fully calibrated Soil and Water Assessment Tool (SWAT) model. Results showed that mean yields in the SHRB lagged 4.0 t ha −1 behind the UMRB, although both regions exhibited large yield variations (CV > 10%). High-density planting provided limited yield gains, but reduced erosion by ~30%. Irrigation markedly increased yield by 11% for UMRB and 33% for SHRB, and improved yield stability (CV < 5%), but increased erosion by >10%. Integrated irrigation and high-density planting boosted yields, mitigated erosion, and increased net returns. Yet a 1.5 t ha −1 difference remained between China and the U.S., underlining the need for germplasm improvement to close the productivity divide.

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Publication Details

Journal
npj Sustainable Agriculture
Published
2026-09-30
DOI
https://doi.org/10.1038/s44264-026-00192-3
Primary Topic
Soil erosion and sediment transport
Type
article
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article

Maximizing maize yields while minimizing soil erosion in Mollisol regions of China and the United States

Beibei Ding, Karim C. Abbaspour, Budiman Minasny, Puyu Feng et al.
npj Sustainable Agriculture
Soil erosion and sediment transport
article

Maximizing maize yields while minimizing soil erosion in Mollisol regions of China and the United States

Beibei Ding, Karim C. Abbaspour, Budiman Minasny, Puyu Feng, Brent Clothier, Junyu Qi, Danfeng Sun, Yiwen Han, LI Baoguo, Yong Chen, Xinyi Geng, Xiaoyu Zhang, Ru Zhang, Yingxuan Li, Xiaojie Liu, Peng Wang, Yingqi Zhang
article en

Abstract

As vital global granaries in Mollisol regions, the Upper Mississippi River Basin (UMRB) in the U.S. and Songhua River Basin (SHRB) in China face growing demands to improve maize yields while avoiding soil erosion. We evaluated effects of individual and integrated technologies on maize yield, yield stability, and soil erosion from 2001 to 2018 with a fully calibrated Soil and Water Assessment Tool (SWAT) model. Results showed that mean yields in the SHRB lagged 4.0 t ha −1 behind the UMRB, although both regions exhibited large yield variations (CV > 10%). High-density planting provided limited yield gains, but reduced erosion by ~30%. Irrigation markedly increased yield by 11% for UMRB and 33% for SHRB, and improved yield stability (CV < 5%), but increased erosion by >10%. Integrated irrigation and high-density planting boosted yields, mitigated erosion, and increased net returns. Yet a 1.5 t ha −1 difference remained between China and the U.S., underlining the need for germplasm improvement to close the productivity divide.

npj Sustainable AgricultureVol. 4(1)
The University of Sydney (AU), Nanchang University (CN), Chinese Academy of Sciences (CN), Ministry of Natural Resources (CN), Institute of Urban Environment (CN), Beijing Water Science and Technology Institute (CN), Earth System Science Interdisciplinary Center (US), Institute of Geographic Sciences and Natural Resources Research (CN), China Agricultural University (CN), University of Maryland, College Park (US)
Openalex Percentile: Top 14%
Soil erosion and sediment transport
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