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February 12, 2026Plant and Soil0 citationsOpen Access

Root electrical capacitance method for the field monitoring of maize response to elevated carbon dioxide concentration

ICImre CseresnyésCentre for Agricultural ResearchKPKlára PokovaiInstitute for Soil SciencesZBZoltán Barcza

Key Points

  • The aim is to assess root electrical capacitance as a tool for nondestructive plant phenotyping under elevated carbon dioxide.
  • Conducted a two-year free-air CO2 enrichment experiment with maize.
  • Monitored saturation root electrical capacitance during the plant growth cycle.
  • Measured aboveground plant parameters in situ at flowering.
  • Capacitance measurements showed a seasonal pattern in root development with peak at flowering.
  • Higher nitrogen and CO2 enrichment positively affected plant growth.
  • C R * was significantly correlated with stem area, biomass index, and leaf chlorophyll concentration.
  • Best correlation was with leaf area, indicating root health and water uptake.
  • C R * at flowering predicted maize yield effectively.

Abstract

Abstract Aims This study evaluated the suitability of root electrical capacitance measurements for nondestructive plant phenotyping in a free-air CO 2 enrichment (FACE) experiment. Methods A two-year FACE study was conducted with maize grown under ambient and elevated CO 2 , and low and high nitrogen supply in three replicate plots. The saturation root electrical capacitance (C R *) was monitored during the plant growth cycle. Aboveground plant parameters were measured in situ at flowering. Results Capacitance measurements revealed a seasonal pattern in root development with a peak at flowering, and the positive effect of higher nitrogen dose and CO 2 enrichment on plant growth. At anthesis, C R * was significantly ( p < 0.001) and linearly correlated with stem basal area (R 2 : 0.51–0.68), aboveground biomass index (basal area × plant height; R 2 : 0.47–0.62) and leaf chlorophyll concentration (R 2 : 0.40–0.56). However, the best correlation (R 2 : 0.73 and 0.74) was found for plant leaf area, which is closely related to root water uptake, suggesting that the applied current signal penetrated the roots, and that the capacitance method directly measured root status in the field. In addition, C R * at flowering was a reasonable early predictor of maize grain yield (R 2 : 0.58 and 0.64) under our experimental conditions. Conclusions The electrical capacitance method proved to be a practical high-throughput tool for phenotyping not only the root but the whole plant in the field. Being noninvasive, it is particularly beneficial in FACE systems, where destructive sampling and soil disturbance should be minimized. It would also provide cost-effective support for breeding stress-tolerant and climate-resilient crops. Graphical Abstract

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Cite This Study

Cseresnyés et al. (2026) studied this question.

synapsesocial.com/papers/698d6e3c5be6419ac0d53cfbhttps://doi.org/10.1007/s11104-026-08351-8
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