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Updated: Aug 5, 2026

High-Throughput, In-Field Screening of Photosynthetic Efficiency in Crop Plants Using an Autonomous Robot
Published on: January 9, 2026
Optimized sowing rate and fertilization regulate photosynthetic characteristics, grain yield and quality of winter
Yu Feng1, Hafeez Noor2, Aixia Ren2
1Department of Geography, Xinzhou Normal University, Xinzhou, 034000, Shanxi, China. lanwellonyu@163.com.
Abstract:
The Loess Plateau is a principal dryland winter wheat production region in China, where unreasonable sowing rate and fertilization management limit yield and quality. A two-factor split-plot experiment was conducted during 2019-2021 with three sowing rates (150 kg ha-1, 180 kg ha-1, 210 kg ha-1) and three fertilization type (CK, OPT, OPT-N). Increasing sowing rate to 210 kg ha-1 significantly improved population tiller, secondary root number, and canopy structure. OPT reduced N input by > 50% but maintained plant growth and delayed leaf senescence. The 180 kg ha-1 rate enhanced canopy light interception at anthesis, while 210 kg ha-1 better sustained post-anthesis chlorophyll content, net photosynthetic rate, and stomatal conductance. Compared with OPT, OPT-N markedly restricted root growth, photosynthesis, and matter accumulation. 210 kg ha-1 + OPT significantly increased 1000-grain weight by 5-11%, grain yield by 1.7-3.7%, total starch by 1.91-5.22%, and flour processing quality. The interaction significantly regulated growth, photosynthesis, yield, and quality. This study demonstrates that 210 kg ha-1 + OPT realizes synchronous improvements in yield, quality, and resource efficiency under reduced N input, providing a green cultivation model for dryland wheat.
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