Increased Strip Width Balancing Interspecific Competition and Enhanced Yield in Maize–Flax Intercropping Systems

Interspecies interaction is key to achieving intercropping advantages. However, in semi-arid rainfed agricultural areas, research on how strip width influences interspecific relationships and system productivity in maize–flax intercropping remains insufficient. A three-year field experiment was conducted to assess the impacts of varying strip widths (80, 120, and 160 cm) on system productivity and interspecies interactions in a maize–flax intercropping system. The results demonstrated that the 160 cm strip-width treatment achieved the highest land equivalent ratio (LER) and total system yield, with average increases of 11.3% and 37.5%, 7.3% and 38.8% compared to the 120 cm and 80 cm strip-width treatments, respectively. The improvement in grain yield was primarily attributed to synergistic increases in maize kernel number per ear and 1000-kernel weight, as well as enhanced capsule number per plant, seeds per capsule, and 1000-seed weight of flax. Analysis of interspecific competition dynamics revealed that flax exhibited stronger competitive ability during its later growth stages (kernel-filling and maturity stage) under the 160 cm strip width, with an average increase of 97.2% compared to other treatments. Furthermore, the wider strip width optimized the relative crowding coefficient (RCC) and promoted the recovery effect of maize (RE) after flax harvest. Correlation analysis indicated a significant negative relationship between the intensity of interspecific competition during the maize V3 and V12 stages and flax yield. In conclusion, adopting a 160 cm strip width in the maize–flax intercropping system maximizes overall productivity by optimizing yield components, promoting dry matter accumulation, and balancing interspecific interactions.

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Journal
Plants
Published
2026-09-22
DOI
https://doi.org/10.3390/plants15192895
Primary Topic
Agronomic Practices and Intercropping Systems
Type
article
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article

Increased Strip Width Balancing Interspecific Competition and Enhanced Yield in Maize–Flax Intercropping Systems

Xingkang Ma, Peina Lu, Bin Yan, Yifan Wang et al.
Plants
Agronomic Practices and Intercropping Systems
article

Increased Strip Width Balancing Interspecific Competition and Enhanced Yield in Maize–Flax Intercropping Systems

Xingkang Ma, Peina Lu, Bin Yan, Yifan Wang, Bing Wu, Jing Han, Yuhong Gao
article en

Abstract

Interspecies interaction is key to achieving intercropping advantages. However, in semi-arid rainfed agricultural areas, research on how strip width influences interspecific relationships and system productivity in maize–flax intercropping remains insufficient. A three-year field experiment was conducted to assess the impacts of varying strip widths (80, 120, and 160 cm) on system productivity and interspecies interactions in a maize–flax intercropping system. The results demonstrated that the 160 cm strip-width treatment achieved the highest land equivalent ratio (LER) and total system yield, with average increases of 11.3% and 37.5%, 7.3% and 38.8% compared to the 120 cm and 80 cm strip-width treatments, respectively. The improvement in grain yield was primarily attributed to synergistic increases in maize kernel number per ear and 1000-kernel weight, as well as enhanced capsule number per plant, seeds per capsule, and 1000-seed weight of flax. Analysis of interspecific competition dynamics revealed that flax exhibited stronger competitive ability during its later growth stages (kernel-filling and maturity stage) under the 160 cm strip width, with an average increase of 97.2% compared to other treatments. Furthermore, the wider strip width optimized the relative crowding coefficient (RCC) and promoted the recovery effect of maize (RE) after flax harvest. Correlation analysis indicated a significant negative relationship between the intensity of interspecific competition during the maize V3 and V12 stages and flax yield. In conclusion, adopting a 160 cm strip width in the maize–flax intercropping system maximizes overall productivity by optimizing yield components, promoting dry matter accumulation, and balancing interspecific interactions.

PlantsVol. 15(19)
Gansu Agricultural University (CN)
Zero hunger
Openalex Percentile: Top 9%
Agronomic Practices and Intercropping Systems
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Increased Strip Width Balancing Interspecific Competition and Enhanced Yield in Maize–Flax Intercropping Systems — Xingkang Ma, Peina Lu, et al. · Plants (2026) | TGRS Research Map | TGRS