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January 14, 2026Forests2 citationsOpen Access

Application of Graphene Oxide Nanomaterials in Crop Plants and Forest Plants

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YNYixuan NiuXYXu YaoJWJun Hyok Won

Key Points

  • To assess the impact of graphene oxide nanomaterials on crop and forest plant responses under varying exposure methods.
  • Summarized studies on graphene oxide exposures via seed priming, foliar delivery, and soil exposure.
  • Compared effects on annual crops and woody forest plants.
  • Analyzed mechanisms related to surface oxygen groups and ion microenvironments.
  • Low-to-moderate doses improve germination and root architecture in crops.
  • High doses can cause oxidative injury and photosynthetic inhibition.
  • Limited data on forest plant responses, emphasizing the need for further research.

Abstract

Graphene oxide (GO) is a carbon-based nanomaterial explored for agricultural and forestry uses, but plant responses are strongly subject to both the dose and the route of exposure. We summarized recent studies with defined graphene oxide (GO) exposures by seed priming, foliar delivery, and root or soil exposure, while comparing annual crops with woody forest plants. Mechanistic progress points to a shared physicochemical basis: surface oxygen groups and sheet geometry reshape water and ion microenvironments at the soil–seed and soil–rhizosphere interfaces, and many reported shifts in antioxidant enzymes and hormone pathways likely represent downstream stress responses. In crops, low-to-moderate doses most consistently improve germination, root architecture, and tolerance to salinity or drought stress, whereas high doses or prolonged root exposure can cause root surface coating, oxidative injury, and photosynthetic inhibition. In forest plants, evidence remains limited and often relies on seedlings or tissue culture. For forest plants with long life cycles, processes such as soil persistence, aging, and multi-seasonal carry-over become key factors, especially in nurseries and restoration substrates. The available data indicate predominant root retention with generally limited root-to-shoot translocation, so residues in edible and medicinal organs remain insufficiently quantified under realistic-use patterns. This review provides a scenario-based framework for crop- and forestry-specific safe-dose windows and proposes standardized endpoints for long-term fate and ecological risk assessment.

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Cite This Study

Niu et al. (2026) studied this question.

synapsesocial.com/papers/6966f31d13bf7a6f02c00d32https://doi.org/10.3390/f17010094
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